Heavy pnictogens-based perovskite-inspired materials: Sustainable light-harvesters for indoor photovoltaics
暂无分享,去创建一个
F. Lamberti | T. Gatti | Fabian Schmitz | Simone Meloni | Ribhu Bhatia | Simone Meloni | Francesco Lamberti
[1] E. Della Gaspera,et al. Solution processed bismuth oxyiodide (BiOI) thin films and solar cells , 2023, Nanotechnology.
[2] Li Cheng,et al. Toxicity, Leakage, and Recycling of Lead in Perovskite Photovoltaics , 2023, Advanced Energy Materials.
[3] T. Alanazi. Design and Device Numerical Analysis of Lead-Free Cs2AgBiBr6 Double Perovskite Solar Cell , 2023, Crystals.
[4] P. Yadav,et al. Elucidating Polaron Dynamics in Cs2AgBiBr6 Double Perovskite. , 2023, The journal of physical chemistry letters.
[5] Jie Tang,et al. MACl enhanced electron extraction in all-inorganic Cs2AgBiBr6 perovskite photovoltaics. , 2023, Chemical communications.
[6] Y. Choi,et al. Heavy pnictogen chalcohalides for efficient, stable, and environmentally friendly solar cell applications , 2023, Nanotechnology.
[7] C. Sudakar,et al. Anionic Alloying in Hybrid Halide Cs2AgBiBr6–xClx Double Perovskites: Is it True Alloying or Preferential Occupation of Halide Ions in MX6 Octahedra? , 2022, The Journal of Physical Chemistry C.
[8] Jun Zhu,et al. Regulating film crystallization kinetics with thiourea additive in Cs2AgBiBr6 solar cells , 2022, Journal of Physics D: Applied Physics.
[9] Z. Zheng,et al. Phase-Controlled Strategy for High-Quality Single-Source Vapor-Deposited Cs2AgBiBr6 Thin Films , 2022, ACS Applied Energy Materials.
[10] B. Fares,et al. Evaluating the Potential of Lead‐Free Nontoxic Cs2BiAgI6‐Based Double Perovskite Solar Cell , 2022, physica status solidi (a).
[11] Ankit Stephen Thomas. A Review on Antimony-based Perovskite Solar Cells , 2022, Equilibrium Journal of Chemical Engineering.
[12] K. Wojciechowski,et al. Commercial Applications of Indoor Photovoltaics Based on Flexible Perovskite Solar Cells , 2022, ACS Energy Letters.
[13] I. Kim,et al. Heteroanionic Lead‐Free Double‐Perovskite Halides for Bandgap Engineering , 2022, Advanced Engineering Materials.
[14] Bowei Li,et al. Improving the stability of inverted perovskite solar cells towards commercialization , 2022, Communications Materials.
[15] Yue Hu,et al. Degradation pathways in perovskite solar cells and how to meet international standards , 2022, Communications Materials.
[16] D. Scanlon,et al. The defect challenge of wide-bandgap semiconductors for photovoltaics and beyond , 2022, Nature Communications.
[17] Hongbo Lu,et al. VOC over 1.2 V for Cs2AgBiBr6 solar cells based on formamidinium acetate additive , 2022, Journal of Materials Science: Materials in Electronics.
[18] P. Vajeeston,et al. Cs2AgBiBr6 as a mixed anion perovskites for photovoltaic applications: A first-principle study , 2022, Materials Today: Proceedings.
[19] S. Meloni,et al. Photoprotection in metal halide perovskites by ionic defect formation , 2022, Joule.
[20] M. Sui,et al. Hydrogenated Cs2AgBiBr6 for significantly improved efficiency of lead-free inorganic double perovskite solar cell , 2022, Nature Communications.
[21] A. Weidenkaff,et al. Sb‐substituted Cs 2 AgBiBr 6 – as much as it could be? Influence of synthesis methods on Sb‐substitution level in Cs 2 AgBiBr 6 , 2022, Energy Technology.
[22] J. MacManus‐Driscoll,et al. Long-term solar water and CO2 splitting with photoelectrochemical BiOI–BiVO4 tandems , 2022, Nature Materials.
[23] Jiban Podder,et al. Indirect to direct band gap transition through order to disorder transformation of Cs2AgBiBr6via creating antisite defects for optoelectronic and photovoltaic applications , 2022, RSC advances.
[24] S. Samal,et al. Understanding of the Band Gap Transition in Cs3Sb2Cl9–xBrx: Anion Site Preference-Induced Structural Distortion , 2022, ACS Applied Energy Materials.
[25] Qingfeng Dong,et al. Thermochromic Cs2 AgBiBr6 Single Crystal with Decreased Band Gap through Order-Disorder Transition. , 2022, Small.
[26] C. Elsässer,et al. The Electronic Structure of Cs2AgBiBr6 at Room Temperature , 2022, physica status solidi (b).
[27] F. Bella,et al. High Open‐Circuit Voltage Cs2AgBiBr6 Carbon‐Based Perovskite Solar Cells via Green Processing of Ultrasonic Spray‐Coated Carbon Electrodes from Waste Tire Sources , 2022, ChemSusChem.
[28] O. Prezhdo,et al. Ag-Bi Charge Redistribution Creates Deep Traps in Defective Cs2AgBiBr6: Machine Learning Analysis of Density Functional Theory. , 2022, The journal of physical chemistry letters.
[29] Jianxi Yao,et al. Two-Dimensional Cs3Sb2I9−xClx Film with (201) Preferred Orientation for Efficient Perovskite Solar Cells , 2022, Materials.
[30] C. Caruntu,et al. Availability, Toxicology and Medical Significance of Antimony , 2022, International journal of environmental research and public health.
[31] Weidong Xiao,et al. Pinning Bromide Ion with Ionic Liquid in Lead‐Free Cs2AgBiBr6 Double Perovskite Solar Cells , 2022, Advanced Functional Materials.
[32] Haoxu Wang,et al. Low-Trap-Density CsPbX3 Film for High-Efficiency Indoor Photovoltaics. , 2022, ACS applied materials & interfaces.
[33] R. Shail,et al. Bismuth: economic geology and value chains , 2022, Ore Geology Reviews.
[34]
S. Bhattacharyya,et al.
Pressure-induced emission enhancement and bandgap narrowing: Experimental investigations and first-principles theoretical simulations on the model halide perovskite
[35] R. Datta,et al. Design and Deployment of Vehicular Internet of Things for Smart City Applications , 2021, Sustainability.
[36] W. Tress,et al. Cs2AgBiBr6 Double Perovskites as Lead‐Free Alternatives for Perovskite Solar Cells? , 2021, Solar RRL.
[37] J. Chen,et al. Multifunctional Potassium Thiocyanate Interlayer for Eco-Friendly Tin Perovskite Indoor and Outdoor Photovoltaics , 2021, Chemical Engineering Journal.
[38] Z. Hou,et al. Identifying and Passivating Killer Defects in Pb-Free Double Cs2AgBiBr6 Perovskite. , 2021, The journal of physical chemistry letters.
[39] S. Mathur,et al. Bismuth-based halide perovskite and perovskite-inspired light absorbing materials for photovoltaics , 2021, Journal of Physics D: Applied Physics.
[40] F. Palazón,et al. Pulsed Laser Deposition of Cs2AgBiBr6: from Mechanochemically Synthesized Powders to Dry, Single-Step Deposition , 2021, Chemistry of materials : a publication of the American Chemical Society.
[41] Feng Gao,et al. Lead‐Free Double Perovskite Cs2AgBiBr6: Fundamentals, Applications, and Perspectives , 2021, Advanced Functional Materials.
[42] Satyaprasad P. Senanayak,et al. Understanding the Role of Grain Boundaries on Charge‐Carrier and Ion Transport in Cs2AgBiBr6 Thin Films , 2021, Advanced Functional Materials.
[43] Michael Saliba,et al. Solution-Processed Perovskite Thin-films: The Journey from Lab- to Large-Scale Solar Cells , 2021 .
[44] Wei Huang,et al. Flexible Perovskite Solar Cells with High Power-Per-Weight: Progress, Application, and Perspectives , 2021, ACS Energy Letters.
[45] Paola Vivo,et al. Two‐Dimensional Antimony‐Based Perovskite‐Inspired Materials for High‐Performance Self‐Powered Photodetectors , 2021, Advanced Functional Materials.
[46] M. Odelius,et al. Mixed‐Halide Double Perovskite Cs2AgBiX6 (X=Br, I) with Tunable Optical Properties via Anion Exchange , 2021, ChemSusChem.
[47] Jiban Podder,et al. Semiconductor to metallic transition under induced pressure in Cs2AgBiBr6 double halide perovskite: a theoretical DFT study for photovoltaic and optoelectronic applications , 2021, RSC advances.
[48] G. Meneghesso,et al. Opportunities from Doping of Non‐Critical Metal Oxides in Last Generation Light‐Conversion Devices , 2021, Advanced Energy Materials.
[49] K. Hong,et al. Dual-Site Compositional Engineering of Bismuth-Based Halide Perovskites for Stable and Efficient Lead-free Solar Cells , 2021 .
[50] Ghada I. Koleilat,et al. Progress Towards Lead‐Free , Efficient, and Stable Perovskite Solar Cells , 2021, Journal of Chemical Technology & Biotechnology.
[51] L. Occhipinti,et al. Emerging Indoor Photovoltaic Technologies for Sustainable Internet of Things , 2021, Advanced Energy Materials.
[52] Theo Henckens. Scarce mineral resources: Extraction, consumption and limits of sustainability , 2021 .
[53] X. Ren,et al. 40.1% Record Low‐Light Solar‐Cell Efficiency by Holistic Trap‐Passivation using Micrometer‐Thick Perovskite Film , 2021, Advanced materials.
[54] Juan‐Pablo Correa‐Baena,et al. The Role of Dimensionality on the Optoelectronic Properties of Oxide and Halide Perovskites, and their Halide Derivatives , 2021, Advanced Energy Materials.
[55] L. Liao,et al. Lycopene‐Based Bionic Membrane for Stable Perovskite Photovoltaics , 2021, Advanced Functional Materials.
[56] Chien-Yu Chen,et al. Panchromatic heterojunction solar cells for Pb-free All-Inorganic antimony based perovskite , 2021 .
[57] M. Johnston,et al. Ultrafast Excited-State Localization in Cs2AgBiBr6 Double Perovskite , 2021, The journal of physical chemistry letters.
[58] G. Amaratunga,et al. Indoor photovoltaics, The Next Big Trend in solution‐processed solar cells , 2021, InfoMat.
[59] Pardis Pishdad-Bozorgi,et al. Internet of Things Enabled Data Acquisition Framework for Smart Building Applications , 2021 .
[60] Z. Shen,et al. Strong self-trapping by deformation potential limits photovoltaic performance in bismuth double perovskite , 2021, Science Advances.
[61] S. Kato,et al. Annealing effects on structural and photovoltaic properties of the dip-SILAR-prepared bismuth oxyhalides (BiOI, Bi7O9I3, Bi5O7I) films , 2021, SN Applied Sciences.
[62] Meng Li,et al. Suppressed oxidation of tin perovskite by Catechin for eco-friendly indoor photovoltaics , 2021 .
[63] Y. Kanemitsu,et al. Phonon, thermal, and thermo-optical properties of halide perovskites. , 2020, Physical chemistry chemical physics : PCCP.
[64] Chao Yao,et al. Accessing Highly Oriented Two-Dimensional Perovskite Films via Solvent-Vapor Annealing for Efficient and Stable Solar Cells. , 2020, Nano letters.
[65] J. MacManus‐Driscoll,et al. Lead‐Free Perovskite‐Inspired Absorbers for Indoor Photovoltaics , 2020, Advanced Energy Materials.
[66] M. Kanatzidis,et al. Magnetizing lead-free halide double perovskites , 2020, Science Advances.
[67] A. Walsh,et al. Perovskite-inspired materials for photovoltaics and beyond—from design to devices , 2020, Nanotechnology.
[68] A. Du,et al. Dual‐Ion‐Diffusion Induced Degradation in Lead‐Free Cs2AgBiBr6 Double Perovskite Solar Cells , 2020, Advanced Functional Materials.
[69] J. MacManus‐Driscoll,et al. Controlling the preferred orientation of layered BiOI solar absorbers , 2020 .
[70] S. Seok,et al. Lead-free perovskite solar cells enabled by hetero-valent substitutes , 2020 .
[71] T. Rossman,et al. Antimony and its compounds: Health impacts related to pulmonary toxicity, cancer, and genotoxicity. , 2020, Toxicology and applied pharmacology.
[72] R. Friend,et al. Bandgap lowering in mixed alloys of Cs2Ag(SbxBi1−x)Br6 double perovskite thin films , 2020, Journal of Materials Chemistry A.
[73] C. Pao,et al. Modulating Performance and Stability of Inorganic Lead-Free Perovskite Solar Cells via Lewis-pair mediation. , 2020, ACS applied materials & interfaces.
[74] Yueheng Peng,et al. Enhanced photoconversion efficiency in cesium-antimony-halide perovskite derivatives by tuning crystallographic dimensionality , 2020, Applied Materials Today.
[75] Hongyu Pei Breivold. Towards factories of the future: migration of industrial legacy automation systems in the cloud computing and Internet-of-things context , 2019, Enterp. Inf. Syst..
[76] O. Hansen,et al. Parallel Evaluation of the BiI3, BiOI, and Ag3BiI6 Layered Photoabsorbers , 2020 .
[77] M. Nazeeruddin,et al. Dimension-controlled Growth of Antimony-based Perovskite-like Halide for Lead-free and Semitransparent Photovoltaics. , 2020, ACS applied materials & interfaces.
[78] Md. Zunaid Baten,et al. Performance Evaluation of Single-Junction Indoor Photovoltaic Devices for Different Absorber Bandgaps Under Spectrally Varying White Light-Emitting Diodes , 2020, IEEE Journal of Photovoltaics.
[79] R. Signerski,et al. Effect of band gap on power conversion efficiency of single-junction semiconductor photovoltaic cells under white light phosphor-based LED illumination , 2020 .
[80] J. MacManus‐Driscoll,et al. Electronic Structure and Optoelectronic Properties of Bismuth Oxyiodide Robust against Percent‐Level Iodine‐, Oxygen‐, and Bismuth‐Related Surface Defects , 2020, Advanced Functional Materials.
[81] Hang Yin,et al. From 33% to 57% – an elevated potential of efficiency limit for indoor photovoltaics , 2020 .
[82] Pralay K. Santra,et al. Degradation Studies of Cs3Sb2I9: A Lead-Free Perovskite , 2020 .
[83] Pengfei Lv,et al. Bandgap engineering in two-dimensional halide perovskite Cs3Sb2I9 nanocrystals under pressure. , 2020, Nanoscale.
[84] T. Soga,et al. A simple spin-assisted SILAR of bismuth oxyiodide films preparation for photovoltaic application , 2019, SN Applied Sciences.
[85] S. Meloni,et al. How far does the defect tolerance of lead-halide perovskites range? The example of Bi impurities introducing efficient recombination centers , 2019, Journal of Materials Chemistry A.
[86] Siyu Lu,et al. Pressure-induced structural transition and band gap evolution of double perovskite Cs2AgBiBr6 nanocrystals. , 2019, Nanoscale.
[87] Hongzhe Sun,et al. Bismuth: Environmental Pollution and Health Effects☆ , 2019, Encyclopedia of Environmental Health.
[88] Cláudia Borbinha,et al. Bismuth encephalopathy- a rare complication of long-standing use of bismuth subsalicylate , 2019, BMC Neurology.
[89] A. Djurišić,et al. Tailoring Triple‐Anion Perovskite Material for Indoor Light Harvesting with Restrained Halide Segregation and Record High Efficiency Beyond 36% , 2019, Advanced Energy Materials.
[90] Fang‐Chung Chen,et al. Bandgap Engineering Enhances the Performance of Mixed‐Cation Perovskite Materials for Indoor Photovoltaic Applications , 2019, Advanced Energy Materials.
[91] H. Snaith,et al. Revealing the nature of photoluminescence emission in the metal-halide double perovskite Cs2AgBiBr6 , 2019, Journal of Materials Chemistry C.
[92] Sherali Zeadally,et al. Harnessing the power of Internet of Things based connectivity to improve healthcare , 2019, Internet Things.
[93] S. Meloni,et al. Dual effect of humidity on cesium lead bromide: enhancement and degradation of perovskite films , 2019, Journal of Materials Chemistry A.
[94] Lucy D. Whalley,et al. Accumulation of Deep Traps at Grain Boundaries in Halide Perovskites , 2019, ACS Energy Letters.
[95] Yang Yang,et al. Composition Stoichiometry of Cs2AgBiBr6 Films for Highly Efficient Lead-Free Perovskite Solar Cells. , 2019, Nano letters.
[96] Baoyi Wang,et al. Band gap engineering of BiOI via oxygen vacancies induced by graphene for improved photocatalysis , 2019, New Journal of Chemistry.
[97] Jiang Tang,et al. Dimensionality Controlling of Cs3Sb2I9 for Efficient All‐Inorganic Planar Thin Film Solar Cells by HCl‐Assisted Solution Method , 2019, Advanced Optical Materials.
[98] M. Kanatzidis,et al. Structural and thermodynamic limits of layer thickness in 2D halide perovskites , 2018, Proceedings of the National Academy of Sciences.
[99] Jinwoo Park,et al. Comprehensive Understanding and Controlling the Defect Structures: An Effective Approach for Organic-Inorganic Hybrid Perovskite-Based Solar-Cell Application , 2018, Front. Energy Res..
[100] D. Schlettwein,et al. Exciton Dynamics and Electron–Phonon Coupling Affect the Photovoltaic Performance of the Cs2AgBiBr6 Double Perovskite , 2018, The Journal of Physical Chemistry C.
[101] Lijun Ji,et al. Structural evolution and photoluminescence properties of a 2D hybrid perovskite under pressure , 2018, APL Materials.
[102] Tianshu Li,et al. Intrinsic Defect Properties in Halide Double Perovskites for Optoelectronic Applications , 2018, Physical Review Applied.
[103] A. Walsh,et al. Giant Electron-Phonon Coupling and Deep Conduction Band Resonance in Metal Halide Double Perovskite. , 2018, ACS nano.
[104] Shijing Sun,et al. Fundamental Carrier Lifetime Exceeding 1 µs in Cs2AgBiBr6 Double Perovskite , 2018 .
[105] Matthew J. Carnie,et al. Interface Modification by Ionic Liquid: A Promising Candidate for Indoor Light Harvesting and Stability Improvement of Planar Perovskite Solar Cells , 2018, Advanced Energy Materials.
[106] Dan Han,et al. Predicting the thermodynamic stability of double-perovskite halides from density functional theory , 2018, APL Materials.
[107] Tonio Buonassisi,et al. A-Site Cation in Inorganic A3Sb2I9 Perovskite Influences Structural Dimensionality, Exciton Binding Energy, and Solar Cell Performance , 2018 .
[108] B. Dunn,et al. Tuning Molecular Interactions for Highly Reproducible and Efficient Formamidinium Perovskite Solar Cells via Adduct Approach. , 2018, Journal of the American Chemical Society.
[109] A. Alivisatos,et al. The Making and Breaking of Lead-Free Double Perovskite Nanocrystals of Cesium Silver-Bismuth Halide Compositions. , 2018, Nano letters.
[110] T. Savenije,et al. Charge Carrier Dynamics in Cs2AgBiBr6 Double Perovskite , 2018, The journal of physical chemistry. C, Nanomaterials and interfaces.
[111] Anupriya Singh,et al. Photovoltaic Performance of Vapor-Assisted Solution-Processed Layer Polymorph of Cs3Sb2I9. , 2018, ACS applied materials & interfaces.
[112] H. Han,et al. Chlorine-Incorporation-Induced Formation of the Layered Phase for Antimony-Based Lead-Free Perovskite Solar Cells. , 2018, Journal of the American Chemical Society.
[113] Suhuai Wei,et al. Band Structure Engineering of Cs2AgBiBr6 Perovskite through Order-Disordered Transition: A First-Principle Study. , 2018, The journal of physical chemistry letters.
[114] Anirban Mondal,et al. Colloidal Synthesis and Photophysics of M3 Sb2 I9 (M=Cs and Rb) Nanocrystals: Lead-Free Perovskites. , 2017, Angewandte Chemie.
[115] Xiaoyang Zhu,et al. Large polarons in lead halide perovskites , 2017, Science Advances.
[116] Rachel C. Kurchin,et al. Strongly Enhanced Photovoltaic Performance and Defect Physics of Air‐Stable Bismuth Oxyiodide (BiOI) , 2017, Advanced materials.
[117] D. Mitzi,et al. Bandgap Engineering of Lead-Free Double Perovskite Cs2 AgBiBr6 through Trivalent Metal Alloying. , 2017, Angewandte Chemie.
[118] Rachel C. Kurchin,et al. Searching for “Defect-Tolerant” Photovoltaic Materials: Combined Theoretical and Experimental Screening , 2017 .
[119] W. Liang,et al. How the Structures and Properties of Two-Dimensional Layered Perovskites MAPbI3 and CsPbI3 Vary with the Number of Layers. , 2017, The journal of physical chemistry letters.
[120] Su-Huai Wei,et al. Design of Lead-Free Inorganic Halide Perovskites for Solar Cells via Cation-Transmutation. , 2017, Journal of the American Chemical Society.
[121] David Perez Abreu,et al. A resilient Internet of Things architecture for smart cities , 2017, Ann. des Télécommunications.
[122] Lin-wang Wang,et al. High Defect Tolerance in Lead Halide Perovskite CsPbBr3. , 2017, The journal of physical chemistry letters.
[123] K. Meerholz,et al. Suppressed decomposition of organometal halide perovskites by impermeable electron-extraction layers in inverted solar cells , 2017, Nature Communications.
[124] S. Meloni,et al. Valence and conduction band tuning in halide perovskites for solar cell applications , 2016 .
[125] Yanfa Yan,et al. Thermodynamic Stability and Defect Chemistry of Bismuth-Based Lead-Free Double Perovskites. , 2016, ChemSusChem.
[126] Angshuman Nag,et al. Band Edge Energies and Excitonic Transition Probabilities of Colloidal CsPbX3 (X = Cl, Br, I) Perovskite Nanocrystals , 2016 .
[127] Zongyan Zhao,et al. Electronic Structure and Optical Properties of BiOI as a Photocatalyst Driven by Visible Light , 2016 .
[128] Sergei Tretiak,et al. High-efficiency two-dimensional Ruddlesden–Popper perovskite solar cells , 2016, Nature.
[129] F. Giustino,et al. Band Gaps of the Lead-Free Halide Double Perovskites Cs2BiAgCl6 and Cs2BiAgBr6 from Theory and Experiment. , 2016, The journal of physical chemistry letters.
[130] Harrison Ka Hin Lee,et al. Is organic photovoltaics promising for indoor applications , 2016 .
[131] S. Rühle. Tabulated values of the Shockley–Queisser limit for single junction solar cells , 2016 .
[132] Aslihan Babayigit,et al. Toxicity of organometal halide perovskite solar cells. , 2016, Nature materials.
[133] W. Windl,et al. Cs2AgBiX6 (X = Br, Cl): New Visible Light Absorbing, Lead-Free Halide Perovskite Semiconductors , 2016 .
[134] A. Lindenberg,et al. A Bismuth-Halide Double Perovskite with Long Carrier Recombination Lifetime for Photovoltaic Applications. , 2016, Journal of the American Chemical Society.
[135] Nam-Gyu Park,et al. Lewis Acid-Base Adduct Approach for High Efficiency Perovskite Solar Cells. , 2016, Accounts of chemical research.
[136] Chien-Yu Chen,et al. Perovskite Photovoltaics for Dim‐Light Applications , 2015 .
[137] D. Mitzi,et al. Thin-film preparation and characterization of Cs3Sb2I9: A lead-free layered perovskite semiconductor , 2015 .
[138] Nam-Gyu Park,et al. Highly Reproducible Perovskite Solar Cells with Average Efficiency of 18.3% and Best Efficiency of 19.7% Fabricated via Lewis Base Adduct of Lead(II) Iodide. , 2015, Journal of the American Chemical Society.
[139] H. Snaith,et al. Direct measurement of the exciton binding energy and effective masses for charge carriers in organic–inorganic tri-halide perovskites , 2015, Nature Physics.
[140] Christopher H. Hendon,et al. Nanocrystals of Cesium Lead Halide Perovskites (CsPbX3, X = Cl, Br, and I): Novel Optoelectronic Materials Showing Bright Emission with Wide Color Gamut , 2015, Nano letters.
[141] H. Zeng,et al. Strong covalency-induced recombination centers in perovskite solar cell material CH3NH3PbI3. , 2014, Journal of the American Chemical Society.
[142] Yanfa Yan,et al. Unusual defect physics in CH3NH3PbI3 perovskite solar cell absorber , 2014 .
[143] Laura M Herz,et al. High Charge Carrier Mobilities and Lifetimes in Organolead Trihalide Perovskites , 2013, Advanced materials.
[144] Laura M. Herz,et al. Electron-Hole Diffusion Lengths Exceeding 1 Micrometer in an Organometal Trihalide Perovskite Absorber , 2013, Science.
[145] Liping Yu,et al. Identification of potential photovoltaic absorbers based on first-principles spectroscopic screening of materials. , 2012, Physical review letters.
[146] Mark E. Williams,et al. Bismuth Toxicity: A Rare Cause of Neurologic Dysfunction , 2012 .
[147] Wim Turkenburg,et al. Charge yield potential of indoor-operated solar cells incorporated into Product Integrated Photovoltaic (PIPV) , 2011 .
[148] Shyam Sundar,et al. Antimony Toxicity , 2010, International journal of environmental research and public health.
[149] Lizhi Zhang,et al. Electronic and Band Structure Tuning of Ternary Semiconductor Photocatalysts by Self Doping: The Case of BiOI , 2010 .
[150] Qingshan Zhu,et al. Electronic structures of relaxed BiOX (X = F, Cl, Br, I) photocatalysts , 2008 .
[151] D. Correa,et al. Bismuth subsalicylate toxicity as a cause of prolonged encephalopathy with myoclonus , 1995, Movement disorders : official journal of the Movement Disorder Society.
[152] T. Gramstad,et al. Synthesis and vibrational spectra of some lead(II) halide adducts with O-, S-, and N-donor atom ligands , 1976 .
[153] H. Sumi,et al. Urbach-Martienseen Rule and Exciton Trapped Momentarily by Lattice Vibrations , 1971 .
[154] Y. Toyozawa. Self-Trapping of an Electron by the Acoustical Mode of Lattice Vibration. I , 1961 .
[155] G. Ceder,et al. Impact of Processing Conditions on the Film Formation of Lead‐Free Halide Double Perovskite Cs2AgBiBr6 , 2022, Journal of Materials Chemistry A.
[156] C. Sudakar,et al. Photoinduced degradation of thermally stable Cs2AgBiBr6 double perovskites by micro-Raman studies , 2022, Materials Advances.
[157] G. Schileo,et al. Lead or no lead? Availability, toxicity, sustainability and environmental impact of lead-free perovskite solar cells , 2020 .
[158] L. Reindl,et al. Maximum efficiencies of indoor photovoltaic devices , 2013, IEEE Journal of Photovoltaics.