Progress of Photocapacitors
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F. Brunetti | M. Freitag | F. De Rossi | M. Deepa | Aparajita Das | Natalie Flores‐Diaz | Marina Freitag
[1] A. Hagfeldt,et al. Hydroxamic acid pre-adsorption raises the efficiency of cosensitized solar cells , 2022, Nature.
[2] Ya‐Ming Tian,et al. Energy- and atom-efficient chemical synthesis with endergonic photocatalysis , 2022, Nature Reviews Chemistry.
[3] Fenghua Li,et al. Photo-supercapacitor based on quantum dot-sensitized solar cells and active carbon supercapacitors , 2022, Journal of Materials Science: Materials in Electronics.
[4] S. Scherhaufer,et al. Advanced materials for emerging photovoltaic systems – Environmental hotspots in the production and end-of-life phase of organic, dye-sensitized, perovskite, and quantum dots solar cells , 2022, Sustainable Materials and Technologies.
[5] Zhicheng Ju,et al. Recent advances and perspectives on prelithiation strategies for lithium-ion capacitors , 2022, Rare Metals.
[6] P. Aubert,et al. MoO3–Carbon Nanotube Negative Electrode Designed for a Fully Hybrid Asymmetric Metal Oxide-Based Pseudocapacitor Operating in an Organic Electrolyte , 2022, ACS Applied Energy Materials.
[7] Weizhai Bao,et al. Integrated Photovoltaic Charging and Energy Storage Systems: Mechanism, Optimization, and Future. , 2022, Small.
[8] K. Kar,et al. A Flexible, Redox‐Active, Aqueous Electrolyte‐Based Asymmetric Supercapacitor with High Energy Density Based on Keratin‐Derived Renewable Carbon , 2022, Advanced Materials Technologies.
[9] S. Stupp,et al. Selective visible-light photocatalysis of acetylene to ethylene using a cobalt molecular catalyst and water as a proton source , 2022, Nature Chemistry.
[10] Jincheng Zhang,et al. Flexible perovskite solar cells: Material selection and structure design , 2022, Applied Physics Reviews.
[11] Jihuai Wu,et al. Photocapacitor integrating perovskite solar cell and symmetrical supercapacitor generating a conversion storage efficiency over 20% , 2022, Nano Energy.
[12] Jianzhong Wu. Understanding the Electric Double-Layer Structure, Capacitance, and Charging Dynamics. , 2022, Chemical reviews.
[13] Z. Khan,et al. Quantum dots-sensitized solar cells: a review on strategic developments , 2022, Bulletin of Materials Science.
[14] W. Tress,et al. Over 24% efficient MA-free CsxFA1−xPbX3 perovskite solar cells , 2022, Joule.
[15] M. Santosh,et al. The integration of flexible dye-sensitized solar cells and storage devices towards wearable self-charging power systems: A review , 2022, Renewable and Sustainable Energy Reviews.
[16] Zhenhua Lin,et al. Recent Progress of Electrode Materials for Flexible Perovskite Solar Cells , 2022, Nano-Micro Letters.
[17] Xiangyang Zhou,et al. Recent advances in solid‐state supercapacitors: From emerging materials to advanced applications , 2022, International Journal of Energy Research.
[18] Yongrui Yang,et al. Recent progress in the all‐solid‐state flexible supercapacitors , 2022, SmartMat.
[19] Zhike Liu,et al. Record‐Efficiency Flexible Perovskite Solar Cells Enabled by Multifunctional Organic Ions Interface Passivation , 2022, Advanced materials.
[20] B. Rotenberg,et al. Microscopic Simulations of Electrochemical Double-Layer Capacitors , 2022, Chemical reviews.
[21] Jun Lu,et al. An Ultrafast, Durable, and High‐Loading Polymer Anode for Aqueous Zinc‐Ion Batteries and Supercapacitors , 2022, Advanced materials.
[22] A. Di Carlo,et al. Low‐Temperature‐Processed Stable Perovskite Solar Cells and Modules: A Comprehensive Review , 2022, Advanced Energy Materials.
[23] D. Tan,et al. Advantage of Larger Interlayer Spacing of a Mo2Ti2C3 MXene Free-Standing Film Electrode toward an Excellent Performance Supercapacitor in a Binary Ionic Liquid–Organic Electrolyte , 2022, ACS omega.
[24] M. B. Arvas,et al. An ultrahigh‐energy density and wide potential window aqueous electrolyte supercapacitor built by polypyrrole/aniline 2‐sulfonic acid modified carbon felt electrode , 2022, International Journal of Energy Research.
[25] S. Nayak,et al. Self-charging supercapacitors for smart electronic devices: a concise review on the recent trends and future sustainability , 2022, Journal of Materials Science.
[26] W. Ma,et al. Compromising Charge Generation and Recombination with Asymmetric Molecule for High‐Performance Binary Organic Photovoltaics with Over 18% Certified Efficiency , 2022, Advanced Functional Materials.
[27] Wei Yan,et al. Interfacial engineering of nanostructured photoanode in fiber dye‐sensitized solar cells for self‐charging power systems , 2022, EcoMat.
[28] S. Mathur,et al. Perovskite Solar Cells Based Self-Charging Power Packs__ Fundamentals, Applications and Challenges , 2022, Nano Energy.
[29] W. Kan,et al. Review on Low‐Cost Counter Electrode Materials for Dye‐Sensitized Solar Cells: Effective Strategy to Improve Photovoltaic Performance , 2021, Advanced Materials Interfaces.
[30] Chao Li,et al. Two-dimensional nanosheets constituted trimetal Ni-Co-Mn sulfide nanoflower-like structure for high-performance hybrid supercapacitors , 2021 .
[31] F. Su,et al. High performance electrochromic supercapacitors powered by perovskite-solar-cell for real-time light energy flow control , 2021, Chemical Engineering Journal.
[32] Rubén González Crespo,et al. Economic and environmental impacts of energy efficiency over smart cities and regulatory measures using a smart technological solution , 2021 .
[33] Meenakshamma Ambapuram,et al. Optimal Dye Sensitized Solar Cell and Photocapacitor Performance with Efficient Electrocatalytic SWCNH Assisted Carbon Electrode , 2021, ACS Applied Energy Materials.
[34] Binbin Yang,et al. Simultaneously achieving high energy and power density for ultrafast-charging supercapacitor built by a semi-graphitic hierarchical porous carbon nanosheet and a high-voltage alkaline aqueous electrolyte , 2021 .
[35] Jin-Cheng Zheng,et al. 2.4 V high performance supercapacitors enabled by polymer-strengthened 3 m aqueous electrolyte , 2021 .
[36] S. Glunz,et al. High-Efficiency Monolithic Photosupercapacitor – A Smart Integration of a Perovskite Solar Cell with a Mesoporous Carbon Double-Layer Capacitor , 2021 .
[37] E. Kymakis,et al. Indoor Perovskite Photovoltaics for the Internet of Things—Challenges and Opportunities toward Market Uptake , 2021, Advanced Energy Materials.
[38] F. Sauvage,et al. Toward Sustainable, Colorless, and Transparent Photovoltaics: State of the Art and Perspectives for the Development of Selective Near‐Infrared Dye‐Sensitized Solar Cells , 2021, Advanced Energy Materials.
[39] S. Oswald,et al. Activated Carbon Derived from Cellulose and Cellulose Acetate Microspheres as Electrode Materials for Symmetric Supercapacitors in Aqueous Electrolytes , 2021, Energy & Fuels.
[40] Kunwar Singh Vaisla,et al. Design of a Structured Hypercube Network Chip Topology Model for Energy Efficiency in Wireless Sensor Network Using Machine Learning , 2021, SN Computer Science.
[41] L. Occhipinti,et al. Emerging Indoor Photovoltaic Technologies for Sustainable Internet of Things , 2021, Advanced Energy Materials.
[42] Yulong Ying,et al. Carbon nanotubes interpenetrating MOFs-derived Co-Ni-S composite spheres with interconnected architecture for high performance hybrid supercapacitor. , 2021, Journal of colloid and interface science.
[43] D. Lim,et al. Indoor Organic Photovoltaics for Self‐Sustaining IoT Devices: Progress, Challenges and Practicalization , 2021, ChemSusChem.
[44] Zaifang Li,et al. Solution-processed solar-charging power units made of organic photovoltaic modules and asymmetric super-capacitors , 2021 .
[45] M. Santosh,et al. Recent progress in dye sensitized solar cell materials and photo-supercapacitors: A review , 2021 .
[46] W. Ma,et al. A highly crystalline non-fullerene acceptor enabling efficient indoor organic photovoltaics with high EQE and fill factor , 2021 .
[47] L. Liao,et al. Lycopene‐Based Bionic Membrane for Stable Perovskite Photovoltaics , 2021, Advanced Functional Materials.
[48] Jun Hee Lee,et al. Pseudo-halide anion engineering for α-FAPbI3 perovskite solar cells , 2021, Nature.
[49] M. Santosh,et al. Dye-Sensitized Solar Cell for Indoor Applications: A Mini-Review , 2021, Journal of Electronic Materials.
[50] B. Tang,et al. Flexible Organic Solar Cells: Progress and Challenges , 2021, Small Science.
[51] Christian Breyer,et al. Solar photovoltaics is ready to power a sustainable future , 2021, Joule.
[52] Shafali Jain,et al. Wireless Communication Based Evaluation of Power Consumption for Constrained Energy System , 2021, Wirel. Pers. Commun..
[53] S. Zakeeruddin,et al. A molecular photosensitizer achieves a Voc of 1.24 V enabling highly efficient and stable dye-sensitized solar cells with copper(II/I)-based electrolyte , 2021, Nature Communications.
[54] S. Dou,et al. Photo‐rechargeable batteries and supercapacitors: Critical roles of carbon‐based functional materials , 2021, Carbon Energy.
[55] Hongliang Lu,et al. Strategies for High-Performance Large-Area Perovskite Solar Cells toward Commercialization , 2021, Crystals.
[56] S. Gheewala,et al. Third generation of photovoltaic panels: A life cycle assessment , 2021 .
[57] Shashi Bhushan,et al. FAJIT: a fuzzy-based data aggregation technique for energy efficiency in wireless sensor network , 2021, Complex & Intelligent Systems.
[58] Dragan Peraković,et al. Ensemble machine learning approach for classification of IoT devices in smart home , 2021, Int. J. Mach. Learn. Cybern..
[59] Zhipan Zhang,et al. Laser-Assisted Fabrication of Microphotocapacitors with High Energy Density and Output Voltage. , 2021, ACS applied materials & interfaces.
[60] M. Ovhal,et al. Scalable, All‐Printed Photocapacitor Fibers and Modules based on Metal‐Embedded Flexible Transparent Conductive Electrodes for Self‐Charging Wearable Applications , 2020, Advanced Energy Materials.
[61] Zhaoxiang Wang,et al. Self-charging flexible solar capacitors based on integrated perovskite solar cells and quasi-solid-state supercapacitors fabricated at low temperature , 2020 .
[62] N. Park,et al. A Review on Scaling Up Perovskite Solar Cells , 2020, Advanced Functional Materials.
[63] K. Leo,et al. Organic Solar Cells—The Path to Commercial Success , 2020, Advanced Energy Materials.
[64] N. Lewis,et al. Nanotechnology for catalysis and solar energy conversion , 2020, Nanotechnology.
[65] Huiyu Chen,et al. Simple synthesis of honeysuckle-like CuCo2O4/CuO composites as a battery type electrode material for high-performance hybrid supercapacitors , 2020 .
[66] U. Schubert,et al. Polymers for Battery Applications—Active Materials, Membranes, and Binders , 2020, Advanced Energy Materials.
[67] Dong Suk Kim,et al. Stable perovskite solar cells with efficiency exceeding 24.8% and 0.3-V voltage loss , 2020, Science.
[68] M. Iqbal,et al. Integration of supercapacitors and batteries towards high‐performance hybrid energy storage devices , 2020, International Journal of Energy Research.
[69] S. Zakeeruddin,et al. Blue Photosensitizer with Copper(II/I) Redox Mediator for Efficient and Stable Dye‐Sensitized Solar Cells , 2020, Advanced Functional Materials.
[70] S. Patané,et al. Single junction-based thin-film CIGS solar cells optimization with efficiencies approaching 24.5 % , 2020 .
[71] A. Polman,et al. Photovoltaics Reaching for the Shockley–Queisser Limit , 2020 .
[72] Wei Ling,et al. The Evolution of Flexible Electronics: From Nature, Beyond Nature, and To Nature , 2020, Advanced science.
[73] Billy Wu,et al. NiCo-Metal-Organic Framework and Porous Carbon Interlayer Based Supercapacitors Integrated with a Solar Cell for a Stand-alone Power Supply System. , 2020, ACS applied materials & interfaces.
[74] V. Dasireddy,et al. Advances on Emerging Materials for Flexible Supercapacitors: Current Trends and Beyond , 2020, Advanced Functional Materials.
[75] H. Jung,et al. High-Efficiency Perovskite Solar Cells. , 2020, Chemical reviews.
[76] A. Iwan,et al. Photo-Rechargeable Electric Energy Storage Systems Based on Silicon Solar Cells and Supercapacitor-Engineering Concept , 2020 .
[77] I. Mora‐Seró. Current Challenges in the Development of Quantum Dot Sensitized Solar Cells , 2020, Advanced Energy Materials.
[78] N. C. Das,et al. One-Dimensional NiSe-Se Hollow Nanotubular Architecture as a Binder-Free Cathode with Enhanced Redox Reactions for High-Performance Hybrid Supercapacitors. , 2020, ACS applied materials & interfaces.
[79] Faiz Ullah Shah,et al. Fluorine-Free Ionic Liquid-Based Electrolyte for Supercapacitors Operating at Elevated Temperatures , 2020, ACS Sustainable Chemistry & Engineering.
[80] M. Demir,et al. Beyond Conventional Activating Methods, a Green Approach for the Synthesis of Biocarbon and Its Supercapacitor Electrode Performance , 2020 .
[81] Takao Someya,et al. The Future of Flexible Organic Solar Cells , 2020, Advanced Energy Materials.
[82] T. Someya,et al. Supercapacitors: An Efficient Ultra‐Flexible Photo‐Charging System Integrating Organic Photovoltaics and Supercapacitors (Adv. Energy Mater. 20/2020) , 2020 .
[83] T. Someya,et al. An Efficient Ultra‐Flexible Photo‐Charging System Integrating Organic Photovoltaics and Supercapacitors , 2020, Advanced Energy Materials.
[84] Maria Laura Parisi,et al. Prospective life cycle assessment of third-generation photovoltaics at the pre-industrial scale: A long-term scenario approach , 2020 .
[85] Shangfeng Yang,et al. Progress of the key materials for organic solar cells , 2020, Science China Chemistry.
[86] Yan Yao,et al. Opportunities and Challenges for Organic Electrodes in Electrochemical Energy Storage. , 2020, Chemical reviews.
[87] J. Xue,et al. Pre-addition of cations to electrolytes for aqueous 2.2 V high voltage hybrid supercapacitor with super-long cycling life and its energy storage mechanism. , 2020, ACS applied materials & interfaces.
[88] Hansung Kim,et al. High-performance solid-state bendable supercapacitors based on PEGBEM-g-PAEMA graft copolymer electrolyte , 2020 .
[89] Y. Huang,et al. Flexible and stretchable polyaniline supercapacitor with a high rate capability , 2020 .
[90] P. Zeng,et al. Recent Advances of Device Components toward Efficient Flexible Perovskite Solar Cells , 2020 .
[91] Yao Yao,et al. A Self-supported Graphene/Carbon Nanotube Hollow Fiber for Integrated Energy Conversion and Storage , 2020, Nano-micro letters.
[92] S. B. Srivastava,et al. Plasmon-Coupled Photocapacitor Neuromodulators , 2020, bioRxiv.
[93] Hui‐Ming Cheng,et al. Carbon-Based Fibers for Advanced Electrochemical Energy Storage Devices. , 2020, Chemical reviews.
[94] Lianzhou Wang,et al. Integrated Photorechargeable Energy Storage System: Next‐Generation Power Source Driving the Future , 2020, Advanced Energy Materials.
[95] Martin Pumera,et al. 3D Printing for Electrochemical Energy Applications. , 2020, Chemical reviews.
[96] I. Mora‐Seró,et al. Flash infrared annealing as a cost-effective and low environmental impact processing method for planar perovskite solar cells , 2019 .
[97] U. Rau,et al. How to Report Record Open‐Circuit Voltages in Lead‐Halide Perovskite Solar Cells , 2019, Advanced Energy Materials.
[98] S. Lanceros‐Méndez,et al. Recent advances on separator membranes for lithium-ion battery applications: From porous membranes to solid electrolytes , 2019, Energy Storage Materials.
[99] Yufeng Zhao,et al. Challenges and opportunities for supercapacitors , 2019, APL Materials.
[100] Yanming Sun,et al. Flexible Solar Cells: A General Approach for Lab‐to‐Manufacturing Translation on Flexible Organic Solar Cells (Adv. Mater. 41/2019) , 2019, Advanced Materials.
[101] M. Vijayakumar,et al. Conversion of Biomass Waste into High Performance Supercapacitor Electrodes for Real-Time Supercapacitor Applications , 2019, ACS Sustainable Chemistry & Engineering.
[102] Piyush Choudhary,et al. Sustainability perspectives- a review for solar photovoltaic trends and growth opportunities , 2019, Journal of Cleaner Production.
[103] Shaohua Shen,et al. Hybrid Photoelectrochemical Water Splitting Systems: From Interface Design to System Assembly , 2019, Advanced Energy Materials.
[104] Chao Li,et al. Flexible perovskite solar cell-driven photo-rechargeable lithium-ion capacitor for self-powered wearable strain sensors , 2019, Nano Energy.
[105] H. Gong,et al. A high energy density aqueous hybrid supercapacitor with widened potential window through multi approaches , 2019, Nano Energy.
[106] Yunhui Huang,et al. Graphene quantum dots encapsulated tremella-like NiCo2O4 for advanced asymmetric supercapacitors , 2019, Carbon.
[107] Paulina Jaramillo,et al. Internet of Things: Energy boon or bane? , 2019, Science.
[108] J. Nelson,et al. Factors Controlling Open-Circuit Voltage Losses in Organic Solar Cells , 2019, Trends in Chemistry.
[109] Jagannathan Thirumalai,et al. A review on recent advances in hybrid supercapacitors: Design, fabrication and applications , 2019, Renewable and Sustainable Energy Reviews.
[110] R. Dubey,et al. Review of carbon-based electrode materials for supercapacitor energy storage , 2019, Ionics.
[111] Thomas M. Brown,et al. Printed Solar Cells and Energy Storage Devices on Paper Substrates , 2019, Advanced Functional Materials.
[112] Ian Marius Peters,et al. Technology and Market Perspective for Indoor Photovoltaic Cells , 2019, Joule.
[113] R. Janssen,et al. Advances in Solution‐Processed Multijunction Organic Solar Cells , 2018, Advanced materials.
[114] Quoc Dat Nguyen,et al. Supercapacitive Properties of Micropore- and Mesopore-Rich Activated Carbon in Ionic-Liquid Electrolytes with Various Constituent Ions. , 2018, ChemSusChem.
[115] C. Flox,et al. Solar vanadium redox-flow battery powered by thin-film silicon photovoltaics for efficient photoelectrochemical energy storage , 2018, Journal of Physics D: Applied Physics.
[116] M. Yilmaz,et al. Integrated photocapacitors based on dye-sensitized TiO2/FTO as photoanode and MnO2 coated micro-array CNTs as supercapacitor counter electrode with TEABF4 electrolyte , 2018, Journal of Renewable and Sustainable Energy.
[117] Qingfeng Sun,et al. All-round utilization of biomass derived all-solid-state asymmetric carbon-based supercapacitor. , 2018, Journal of colloid and interface science.
[118] Yanrong Wang,et al. An all-inorganic perovskite solar capacitor for efficient and stable spontaneous photocharging , 2018, Nano Energy.
[119] M. Deepa,et al. Bifunctional Photo-Supercapacitor with a New Architecture Converts and Stores Solar Energy as Charge. , 2018, ACS applied materials & interfaces.
[120] T. Jacob,et al. Portable High Voltage Integrated Harvesting-Storage Device Employing Dye-Sensitized Solar Module and All-Solid-State Electrochemical Double Layer Capacitor , 2018, Front. Chem..
[121] Varun Vohra,et al. Can Polymer Solar Cells Open the Path to Sustainable and Efficient Photovoltaic Windows Fabrication? , 2018, Chemical record.
[122] Edward H. Sargent,et al. Challenges for commercializing perovskite solar cells , 2018, Science.
[123] B. Dunn,et al. Design and Mechanisms of Asymmetric Supercapacitors. , 2018, Chemical reviews.
[124] Min Ling,et al. Exploring Chemical, Mechanical, and Electrical Functionalities of Binders for Advanced Energy-Storage Devices. , 2018, Chemical reviews.
[125] H. Messaoud,et al. An improved extreme learning machine model for the prediction of human scenarios in smart homes , 2018, Applied Intelligence.
[126] Yafei Li,et al. Tuning morphology and conductivity in two-step synthesis of zinc-cobalt oxide and sulfide hybrid nanoclusters as highly-performed electrodes for hybrid supercapacitors , 2018, Journal of Solid State Electrochemistry.
[127] Wenbin Hu,et al. Review of Hybrid Ion Capacitors: From Aqueous to Lithium to Sodium. , 2018, Chemical reviews.
[128] M. Nazeeruddin,et al. Frontiers, opportunities, and challenges in perovskite solar cells: A critical review , 2018, Journal of Photochemistry and Photobiology C: Photochemistry Reviews.
[129] S. Zakeeruddin,et al. Direct Contact of Selective Charge Extraction Layers Enables High-Efficiency Molecular Photovoltaics , 2018, Joule.
[130] D. Macfarlane,et al. Supported Ionic Liquid Gel Membrane Electrolytes for Flexible Supercapacitors , 2018 .
[131] Q. Pei,et al. Monolithically Integrated Self-Charging Power Pack Consisting of a Silicon Nanowire Array/Conductive Polymer Hybrid Solar Cell and a Laser-Scribed Graphene Supercapacitor. , 2018, ACS applied materials & interfaces.
[132] Heejoon Ahn,et al. Flexible, Swiss roll, fiber-shaped, asymmetric supercapacitor using MnO2 and Fe2O3 on carbon fibers , 2018 .
[133] Wenxi Guo,et al. Highly flexible and scalable photo-rechargeable power unit based on symmetrical nanotube arrays , 2018 .
[134] Fei Huang,et al. Nonfullerene Acceptor Molecules for Bulk Heterojunction Organic Solar Cells. , 2018, Chemical reviews.
[135] Narendra Pratap Singh,et al. Zinc oxide nanoparticles and activated charcoal-based nanocomposite electrode for supercapacitor application , 2018, Ionics.
[136] Zainul Abdin Jaffery,et al. Solar energy harvesting wireless sensor network nodes: A survey , 2018 .
[137] Qian Wang,et al. A high-capacitance flexible solid-state supercapacitor based on polyaniline and Metal-Organic Framework (UiO-66) composites , 2018 .
[138] Y. Gogotsi,et al. Selective Charging Behavior in an Ionic Mixture Electrolyte-Supercapacitor System for Higher Energy and Power. , 2017, Journal of the American Chemical Society.
[139] Ana Claudia Arias,et al. Theoretical analysis and characterization of the energy conversion and storage efficiency of photo-supercapacitors , 2017 .
[140] Lin Mao,et al. Laminated Free Standing PEDOT:PSS Electrode for Solution Processed Integrated Photocapacitors via Hydrogen‐Bond Interaction , 2017 .
[141] Jeffrey Y. Tsao,et al. LED lighting efficacy: Status and directions , 2017 .
[142] P. Ajayan,et al. A flexible solar cell/supercapacitor integrated energy device , 2017 .
[143] B. C. Kim,et al. A high performance PEDOT/PEDOT symmetric supercapacitor by facile in-situ hydrothermal polymerization of PEDOT nanostructures on flexible carbon fibre cloth electrodes , 2017 .
[144] T. Buonassisi,et al. Promises and challenges of perovskite solar cells , 2017, Science.
[145] W. Maes,et al. Low bandgap polymers based on bay-annulated indigo for organic photovoltaics: Enhanced sustainability in material design and solar cell fabrication , 2017 .
[146] Douglas M. Bishop,et al. Efficient kesterite solar cells with high open-circuit voltage for applications in powering distributed devices , 2017 .
[147] L. Nyholm,et al. Cellulose‐based Supercapacitors: Material and Performance Considerations , 2017 .
[148] Guneet Bedi,et al. Quantum dot solar cells , 2017, 2017 IEEE 17th International Conference on Nanotechnology (IEEE-NANO).
[149] Thomas Feurer,et al. Progress in thin film CIGS photovoltaics – Research and development, manufacturing, and applications , 2017 .
[150] Shen-ming Chen,et al. A high performance quasi-solid-state supercapacitor based on CuMnO2 nanoparticles , 2017 .
[151] Tielin Shi,et al. Novel Integration of Perovskite Solar Cell and Supercapacitor Based on Carbon Electrode for Hybridizing Energy Conversion and Storage. , 2017, ACS applied materials & interfaces.
[152] J. Nelson,et al. Transient Optoelectronic Analysis of the Impact of Material Energetics and Recombination Kinetics on the Open-Circuit Voltage of Hybrid Perovskite Solar Cells , 2017 .
[153] Zhong Lin Wang,et al. Silicon Nanowire/Polymer Hybrid Solar Cell-Supercapacitor: A Self-Charging Power Unit with a Total Efficiency of 10.5. , 2017, Nano letters.
[154] M. Yaacob,et al. A three-electrode integrated photo-supercapacitor utilizing graphene-based intermediate bifunctional electrode , 2017 .
[155] G. Chen,et al. Supercapacitor and supercapattery as emerging electrochemical energy stores , 2017 .
[156] Chen Li,et al. High Performance Lithium-Ion Hybrid Capacitors Employing Fe3O4-Graphene Composite Anode and Activated Carbon Cathode. , 2017, ACS applied materials & interfaces.
[157] M. Freitag,et al. Dye-sensitized solar cells for efficient power generation under ambient lighting , 2017, Nature Photonics.
[158] Rose Amal,et al. Monolithic Integration of Anodic Molybdenum Oxide Pseudocapacitive Electrodes on Screen‐Printed Silicon Solar Cells for Hybrid Energy Harvesting‐Storage Systems , 2017 .
[159] Yinglun Sun,et al. Recent Advances in Dual‐Functional Devices Integrating Solar Cells and Supercapacitors , 2017 .
[160] K. Yoshikawa,et al. Silicon heterojunction solar cell with interdigitated back contacts for a photoconversion efficiency over 26% , 2017, Nature Energy.
[161] Tao Song,et al. Integrated solar capacitors for energy conversion and storage , 2017, Nano Research.
[162] H. Tian,et al. Scalable Self‐Propagating High‐Temperature Synthesis of Graphene for Supercapacitors with Superior Power Density and Cyclic Stability , 2017, Advanced materials.
[163] Zhong Jin,et al. MoS2‐Based All‐Purpose Fibrous Electrode and Self‐Powering Energy Fiber for Efficient Energy Harvesting and Storage , 2017 .
[164] S. Priya,et al. Scaling of the flexible dye sensitized solar cell module , 2016 .
[165] Zaharaddeen S. Iro. A Brief Review on Electrode Materials for Supercapacitor , 2016 .
[166] Chao Li,et al. Wearable energy-smart ribbons for synchronous energy harvest and storage , 2016, Nature Communications.
[167] Jr-hau He,et al. Integrated Photoelectrochemical Solar Energy Conversion and Organic Redox Flow Battery Devices. , 2016, Angewandte Chemie.
[168] Pingping Yu,et al. A Novel Sustainable Flour Derived Hierarchical Nitrogen‐Doped Porous Carbon/Polyaniline Electrode for Advanced Asymmetric Supercapacitors , 2016 .
[169] Zhong Lin Wang,et al. Self-powered textile for wearable electronics by hybridizing fiber-shaped nanogenerators, solar cells, and supercapacitors , 2016, Science Advances.
[170] James W. Evans,et al. Organic solar cells and fully printed super-capacitors optimized for indoor light energy harvesting , 2016 .
[171] Shuoqing Zhao,et al. Amaryllis-like NiCo2S4 nanoflowers for high-performance flexible carbon-fiber-based solid-state supercapacitor , 2016 .
[172] Jing Xu,et al. Integrated Photo‐Supercapacitor Based on PEDOT Modified Printable Perovskite Solar Cell , 2016 .
[173] Wilfried Haensch,et al. Solar-powering the Internet of Things , 2016, Science.
[174] Muhammad M. Hussain,et al. CMOS‐Technology‐Enabled Flexible and Stretchable Electronics for Internet of Everything Applications , 2016, Advanced materials.
[175] Huaiguo Xue,et al. Facile synthesis of polypyrrole nanowires for high-performance supercapacitor electrode materials , 2016 .
[176] Justin A. Kerszulis,et al. Solution Processed PEDOT Analogues in Electrochemical Supercapacitors. , 2016, ACS applied materials & interfaces.
[177] Xiaodong Li,et al. Cotton-textile-enabled flexible self-sustaining power packs via roll-to-roll fabrication , 2016, Nature Communications.
[178] Yang Yang Li,et al. Perovskite Photovoltachromic Supercapacitor with All-Transparent Electrodes. , 2016, ACS nano.
[179] Chun Huang,et al. Solid-state supercapacitors with rationally designed heterogeneous electrodes fabricated by large area spray processing for wearable energy storage applications , 2016, Scientific Reports.
[180] Can Li,et al. Integrating a dual-silicon photoelectrochemical cell into a redox flow battery for unassisted photocharging , 2016, Nature Communications.
[181] C. Sousa,et al. Unbiased solar energy storage: Photoelectrochemical redox flow battery , 2016 .
[182] D. Lupo,et al. Behaviour of one-step spray-coated carbon nanotube supercapacitor in ambient light harvester circuit with printed organic solar cell and electrochromic display , 2016, Scientific Reports.
[183] Marc A. Anderson,et al. High performance hybrid supercapacitors by using para-Benzoquinone ionic liquid redox electrolyte , 2016 .
[184] Rongrong Bao,et al. Sustainable Low-Cost Green Electrodes with High Volumetric Capacitance for Aqueous Symmetric Supercapacitors with High Energy Density , 2016 .
[185] Yongbo Yuan,et al. Correlation of energy disorder and open-circuit voltage in hybrid perovskite solar cells , 2016, Nature Energy.
[186] Alagarsamy Pandikumar,et al. Potential active materials for photo-supercapacitor: A review , 2015 .
[187] G. Haarberg,et al. An asymmetric supercapacitor with good electrochemical performances based on Ni(OH)2/AC/CNT and AC , 2015 .
[188] T. Brown,et al. Characterization of photovoltaic devices for indoor light harvesting and customization of flexible dye solar cells to deliver superior efficiency under artificial lighting , 2015 .
[189] R. Narayanan,et al. Combining Energy Conversion and Storage: A Solar Powered Supercapacitor , 2015 .
[190] Z. Huang,et al. Three-Dimensional NiCo2O4@Polypyrrole Coaxial Nanowire Arrays on Carbon Textiles for High-Performance Flexible Asymmetric Solid-State Supercapacitor. , 2015, ACS applied materials & interfaces.
[191] Min Gu,et al. On-chip energy storage integrated with solar cells using a laser scribed graphene oxide film , 2015 .
[192] G. Amaratunga,et al. Graphene-Based Integrated Photovoltaic Energy Harvesting/Storage Device. , 2015, Small.
[193] Xiong Gong,et al. Self‐Powered Electronics by Integration of Flexible Solid‐State Graphene‐Based Supercapacitors with High Performance Perovskite Hybrid Solar Cells , 2015 .
[194] Heng Li,et al. An “all-in-one” mesh-typed integrated energy unit for both photoelectric conversion and energy storage in uniform electrochemical system , 2015 .
[195] Anurag Agarwal,et al. The Internet of Things—A survey of topics and trends , 2014, Information Systems Frontiers.
[196] Andrew S. Westover,et al. All silicon electrode photocapacitor for integrated energy storage and conversion. , 2015, Nano letters.
[197] G. Gigli,et al. Sustainability of Organic Dye-Sensitized Solar Cells: The Role of Chemical Synthesis , 2015 .
[198] Ke-Jing Huang,et al. One-step solvothermal synthesis of different morphologies CuS nanosheets compared as supercapacitor electrode materials , 2015 .
[199] Ning Pan,et al. Supercapacitors Performance Evaluation , 2015 .
[200] Michael Graetzel,et al. A power pack based on organometallic perovskite solar cell and supercapacitor. , 2015, ACS nano.
[201] M. Kondo,et al. High-efficiency amorphous silicon solar cells: Impact of deposition rate on metastability , 2015 .
[202] N. Huang,et al. Electrochemical properties of free‐standing polypyrrole/graphene oxide/zinc oxide flexible supercapacitor , 2015 .
[203] Peifang Liu,et al. Micro-mesoporous carbon spheres derived from carrageenan as electrode material for supercapacitors , 2014 .
[204] Byungwoo Kim,et al. Energy-density enhancement of carbon-nanotube-based supercapacitors with redox couple in organic electrolyte. , 2014, ACS applied materials & interfaces.
[205] Dianbo Ruan,et al. Spiro-(1,1′)-bipyrrolidinium tetrafluoroborate salt as high voltage electrolyte for electric double layer capacitors , 2014 .
[206] Anders Hagfeldt,et al. Combination of Asymmetric Supercapacitor Utilizing Activated Carbon and Nickel Oxide with Cobalt Polypyridyl-Based Dye-Sensitized Solar Cell , 2014 .
[207] Lu Ma,et al. Integrating a redox-coupled dye-sensitized photoelectrode into a lithium–oxygen battery for photoassisted charging , 2014, Nature Communications.
[208] Kamaruzzaman Sopian,et al. A review of semiconductor materials as sensitizers for quantum dot-sensitized solar cells , 2014 .
[209] Yang Yang,et al. Interface engineering of highly efficient perovskite solar cells , 2014, Science.
[210] J. Palma,et al. A 3-V electrochemical capacitor study based on a magnesium polymer gel electrolyte by three different carbon materials , 2014, Journal of Solid State Electrochemistry.
[211] M. Green,et al. The emergence of perovskite solar cells , 2014, Nature Photonics.
[212] M. Yun,et al. Highly Flexible Dye-sensitized Solar Cells Produced by Sewing Textile Electrodes on Cloth , 2014, Scientific Reports.
[213] Adam P. Cohn,et al. Direct integration of a supercapacitor into the backside of a silicon photovoltaic device , 2014 .
[214] Paul M. DiCarmine,et al. Donor–Acceptor Polymers for Electrochemical Supercapacitors: Synthesis, Testing, and Theory , 2014 .
[215] G. Shen,et al. Integrated Photo‐supercapacitor Based on Bi‐polar TiO2 Nanotube Arrays with Selective One‐Side Plasma‐Assisted Hydrogenation , 2014 .
[216] W. Schreiner,et al. Supercapacitor Electrodes Obtained by Directly Bonding 2D MoS2 on Reduced Graphene Oxide , 2014 .
[217] B. Dunn,et al. Where Do Batteries End and Supercapacitors Begin? , 2014, Science.
[218] Peter Veelaert,et al. A Proposal for Typical Artificial Light Sources for the Characterization of Indoor Photovoltaic Applications , 2014 .
[219] A. Vlad,et al. Hybrid supercapacitor-battery materials for fast electrochemical charge storage , 2014, Scientific Reports.
[220] A. Kornyshev,et al. Ionic liquids at electrified interfaces. , 2014, Chemical reviews.
[221] E. Lust,et al. Characteristics of non-aqueous quaternary solvent mixture and Na-salts based supercapacitor electrolytes in a wide temperature range , 2014 .
[222] Menghe Miao,et al. Asymmetric carbon nanotube–MnO2 two-ply yarn supercapacitors for wearable electronics , 2014, Nanotechnology.
[223] C. Lokhande,et al. Architectured morphologies of chemically prepared NiO/MWCNTs nanohybrid thin films for high performance supercapacitors. , 2014, ACS applied materials & interfaces.
[224] Jianfang Wang,et al. RuO2/graphene hybrid material for high performance electrochemical capacitor , 2014 .
[225] Nesrin Ozalp,et al. Description and characterization of an adjustable flux solar simulator for solar thermal, thermochemical and photovoltaic applications , 2014 .
[226] Qing Liu,et al. Self-Assembly of Mesoporous Nanotubes Assembled from Interwoven Ultrathin Birnessite-type MnO2 Nanosheets for Asymmetric Supercapacitors , 2014, Scientific Reports.
[227] K. Leo,et al. Open‐Circuit Voltage and Effective Gap of Organic Solar Cells , 2013 .
[228] Xingwei Li,et al. High-performance asymmetric supercapacitor based on nanoarchitectured polyaniline/graphene/carbon nanotube and activated graphene electrodes. , 2013, ACS applied materials & interfaces.
[229] Hongrui Jiang,et al. Dye‐Sensitized Solar Cell with Energy Storage Function through PVDF/ZnO Nanocomposite Counter Electrode , 2013, Advanced materials.
[230] Erik M. J. Johansson,et al. Integration of solid-state dye-sensitized solar cell with metal oxide charge storage material into photoelectrochemical capacitor , 2013 .
[231] Wako Naoi,et al. New generation "nanohybrid supercapacitor". , 2013, Accounts of chemical research.
[232] A. Hagfeldt,et al. Development of Solid-State Photo-Supercapacitor by Coupling Dye-Sensitized Solar Cell Utilizing Conducting Polymer Charge Relay with Proton-Conducting Membrane Based Electrochemical Capacitor , 2013 .
[233] F. Béguin,et al. Investigation of methoxypropionitrile as co-solvent for ethylene carbonate based electrolyte in supercapacitors. A safe and wide temperature range electrolyte , 2013 .
[234] P. Kamat. Quantum Dot Solar Cells. The Next Big Thing in Photovoltaics. , 2013, The journal of physical chemistry letters.
[235] Xin Cai,et al. Integrated power fiber for energy conversion and storage , 2013 .
[236] Fei Xiao,et al. Flexible all-solid-state asymmetric supercapacitors based on free-standing carbon nanotube/graphene and Mn3O4 nanoparticle/graphene paper electrodes. , 2012, ACS applied materials & interfaces.
[237] Yun Suk Huh,et al. High performance of a solid-state flexible asymmetric supercapacitor based on graphene films. , 2012, Nanoscale.
[238] Marimuthu Palaniswami,et al. Internet of Things (IoT): A vision, architectural elements, and future directions , 2012, Future Gener. Comput. Syst..
[239] Jianzhong Wu,et al. Solvent Effect on the Pore-Size Dependence of an Organic Electrolyte Supercapacitor. , 2012, The journal of physical chemistry letters.
[240] S. Raga,et al. Analysis of the Origin of Open Circuit Voltage in Dye Solar Cells. , 2012, The journal of physical chemistry letters.
[241] J. Durrant,et al. Insights from Transient Optoelectronic Analyses on the Open-Circuit Voltage of Organic Solar Cells. , 2012, The journal of physical chemistry letters.
[242] K. Liang,et al. High-performance three-dimensional nanoporous NiO film as a supercapacitor electrode , 2012 .
[243] Hongcai Gao,et al. High-performance asymmetric supercapacitor based on graphene hydrogel and nanostructured MnO2. , 2012, ACS applied materials & interfaces.
[244] Andrea Balducci,et al. Adiponitrile-based electrochemical double layer capacitor , 2012 .
[245] E. Sargent,et al. Colloidal quantum dot solar cells , 2012, Nature Photonics.
[246] J. Moser,et al. A cobalt complex redox shuttle for dye-sensitized solar cells with high open-circuit potentials , 2012, Nature Communications.
[247] Vanchiappan Aravindan,et al. Lithium-ion conducting electrolyte salts for lithium batteries. , 2011, Chemistry.
[248] Yichuan Ling,et al. Hydrogen-treated TiO2 nanowire arrays for photoelectrochemical water splitting. , 2011, Nano letters.
[249] Yi Cui,et al. Solution-processed graphene/MnO2 nanostructured textiles for high-performance electrochemical capacitors. , 2011, Nano letters.
[250] Wim Turkenburg,et al. Charge yield potential of indoor-operated solar cells incorporated into Product Integrated Photovoltaic (PIPV) , 2011 .
[251] B. Jang,et al. Graphene-based supercapacitor with an ultrahigh energy density. , 2010, Nano letters.
[252] Kuo-Chuan Ho,et al. Plastic dye-sensitized photo-supercapacitor using electrophoretic deposition and compression methods , 2010 .
[253] Kuo-Chuan Ho,et al. A dye-sensitized photo-supercapacitor based on PProDOT-Et2 thick films , 2010 .
[254] W. R. Daud,et al. An overview of photocells and photoreactors for photoelectrochemical water splitting , 2010 .
[255] S. Hashmi,et al. Ionic liquid based sodium ion conducting gel polymer electrolytes , 2010 .
[256] Anders Hagfeldt,et al. Dye-sensitized solar cells. , 2010, Chemical reviews.
[257] Anders Hagfeldt,et al. How the nature of triphenylamine-polyene dyes in dye-sensitized solar cells affects the open-circuit voltage and electron lifetimes. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[258] Henry J. Snaith,et al. Estimating the Maximum Attainable Efficiency in Dye‐Sensitized Solar Cells , 2010 .
[259] Olle Inganäs,et al. On the origin of the open-circuit voltage of polymer-fullerene solar cells. , 2009, Nature materials.
[260] Lili Zhang,et al. Carbon-based materials as supercapacitor electrodes. , 2009, Chemical Society reviews.
[261] Y. Gogotsi,et al. Materials for electrochemical capacitors. , 2008, Nature materials.
[262] C. M. Li,et al. Well-Aligned Cone-Shaped Nanostructure of Polypyrrole/RuO2 and Its Electrochemical Supercapacitor , 2008 .
[263] J. Mubiru,et al. Estimation of monthly average daily global solar irradiation using artificial neural networks , 2008 .
[264] Tsutomu Miyasaka,et al. A high-voltage dye-sensitized photocapacitor of a three-electrode system. , 2005, Chemical communications.
[265] A. Morales-Acevedo. Comment on “The photocapacitor: An efficient self-charging capacitor for direct storage of solar energy” [Appl. Phys. Lett. 85, 3932 (2004)] , 2005 .
[266] Tsutomu Miyasaka,et al. The photocapacitor: An efficient self-charging capacitor for direct storage of solar energy , 2004 .
[267] M. Winter,et al. What are batteries, fuel cells, and supercapacitors? , 2004, Chemical reviews.
[268] K. Takagi,et al. Electrochemical properties of novel ionic liquids for electric double layer capacitor applications , 2004 .
[269] Viresh Dutta,et al. Thin‐film solar cells: an overview , 2004 .
[270] R. Raffaelle,et al. Quantum dot solar cells , 2002 .
[271] Tao Zheng,et al. An Asymmetric Hybrid Nonaqueous Energy Storage Cell , 2001 .
[272] David L. King,et al. Solar cell efficiency tables (Version 60) , 1997 .
[273] Hiroshi Fujiwara,et al. Three‐layered organic solar cell with a photoactive interlayer of codeposited pigments , 1991 .
[274] Martin A. Green,et al. 24% efficient silicon solar cells , 1990, Proceedings of 1994 IEEE 1st World Conference on Photovoltaic Energy Conversion - WCPEC (A Joint Conference of PVSC, PVSEC and PSEC).
[275] C. Tang. Two‐layer organic photovoltaic cell , 1986 .
[276] F. Steinbach,et al. Homogeneous Photocatalysis by Organic Dyes in the Liquid Phase , 1970, Nature.
[277] Da‐Wei Wang,et al. Design Rationale and Device Configuration of Lithium‐Ion Capacitors , 2022 .
[278] Ammar M. Abdulateef,et al. An analysis of photovoltaic/supercapacitor energy system for improving self-consumption and self-sufficiency , 2022, Energy Reports.
[279] K. Lian,et al. Hydroxide ion conducting polymer electrolytes and their applications in solid supercapacitors: A review , 2020 .
[280] Dong-weon Lee,et al. Gold nanoparticles decorated rGO-ZnCo2O4 nanocomposite: A promising positive electrode for high performance hybrid supercapacitors , 2020 .
[281] Handbook of Nanocomposite Supercapacitor Materials II: Performance , 2020 .
[282] Kaiying Wang,et al. Engineering flexible dye-sensitized solar cells for portable electronics , 2019, Solar Energy.
[283] Recent Trends and Advances in Wireless and IoT-enabled Networks , 2019, EAI/Springer Innovations in Communication and Computing.
[284] Eujin Pei,et al. A study of 3D printed active carbon electrode for the manufacture of electric double-layer capacitors , 2017 .
[285] Zhiyu Wang,et al. Sustainable Synthesis and Assembly of Biomass‐Derived B/N Co‐Doped Carbon Nanosheets with Ultrahigh Aspect Ratio for High‐Performance Supercapacitors , 2016 .
[286] Hyun Suk Jung,et al. Perovskite solar cells: from materials to devices. , 2015, Small.
[287] Huisheng Peng,et al. Integrated Polymer Solar Cell and Electrochemical Supercapacitor in a Flexible and Stable Fiber Format , 2014, Advanced materials.
[288] E. Lust,et al. Supercapacitors Based on Propylene Carbonate with Small Addition of Different Sulfur Containing Organic Solvents , 2014 .
[289] F. Krebs,et al. Organic photovoltaics , 2013, Nanotechnology.
[290] Marko Topič,et al. Outdoor testing of PV module temperature and performance under different mounting and operational conditions , 2011 .
[291] J. Nelson. The physics of solar cells , 2003 .