Powering the Future: A Critical Review of Research Progress in Enhancing Stability of High‐Efficiency Organic Solar Cells
暂无分享,去创建一个
[1] F. Gao,et al. Geometry design of tethered small-molecule acceptor enables highly stable and efficient polymer solar cells , 2023, Nature communications.
[2] Jin Young Kim,et al. Path to the fabrication of efficient, stable and commercially viable large-area organic solar cells , 2023, Materials Futures.
[3] Yongfang Li,et al. Giant Molecule Acceptor Enables Highly Efficient Organic Solar Cells Processed Using Non-halogenated Solvent. , 2023, Angewandte Chemie.
[4] Jianhui Hou,et al. High-performance organic photovoltaic cells under indoor lighting enabled by suppressing energetic disorders , 2023, Joule.
[5] Jianhui Hou,et al. Binary Organic Solar Cells with 19.2% Efficiency Enabled by Solid Additive , 2023, Advanced materials.
[6] Xinrong Yang,et al. Low-cost organic photovoltaic materials with great application potentials enabled by developing isomerized non-fused ring acceptors , 2023, Science China Chemistry.
[7] Yanfeng Yin,et al. Achieving sustainability of greenhouses by integrating stable semi-transparent organic photovoltaics , 2023, Nature Sustainability.
[8] X. Qi,et al. Lifetime over 10000 hours for organic solar cells with Ir/IrOx electron-transporting layer , 2023, Nature Communications.
[9] Yezhou Yang,et al. Robust and hydrophobic interlayer material for efficient and highly stable organic solar cells , 2023, Joule.
[10] Baiqiao Liu,et al. 13% Single‐Component Organic Solar Cells based on Double‐Cable Conjugated Polymers with Pendent Y‐Series Acceptors , 2023, Advanced materials.
[11] Bumjoon J. Kim,et al. Efficient and stable organic solar cells enabled by multicomponent photoactive layer based on one-pot polymerization , 2023, Nature Communications.
[12] Jiaying Wu,et al. Unveiling the Morphological and Physical Mechanism of Burn‐in Loss Alleviation by Ternary Matrix Toward Stable and Efficient All‐Polymer Solar Cells , 2023, Advanced materials.
[13] Bumjoon J. Kim,et al. Linker Engineering of Dimerized Small Molecule Acceptors for Highly Efficient and Stable Organic Solar Cells , 2023, ACS Energy Letters.
[14] Jingde Chen,et al. Efficient and Stable Flexible Organic Solar Cells via the Enhanced Optical‐Thermal Radiative Transfer , 2023, Advanced Functional Materials.
[15] Bumjoon J. Kim,et al. Dimerized small-molecule acceptors enable efficient and stable organic solar cells , 2023, Joule.
[16] Yezhou Yang,et al. p—π Conjugated Polyelectrolytes Toward Universal Electrode Interlayer Materials for Diverse Optoelectronic Devices , 2023, Advanced Functional Materials.
[17] Oskar J. Sandberg,et al. Mitigating Detrimental Effect of Self‐Doping Near the Anode in Highly Efficient Organic Solar Cells , 2023, Advanced Functional Materials.
[18] Yuan Zhang,et al. 1,8,9‐Trihydroxyanthracene as a Green Solid Additive for Operational Stability in Organic Solar Cells , 2023, Solar RRL.
[19] A. Jen,et al. 18.2%-efficient ternary all-polymer organic solar cells with improved stability enabled by a chlorinated guest polymer acceptor , 2023, Joule.
[20] Z. Miao,et al. Recent Advances of Solid Additives Used in Organic Solar Cells: Toward Efficient and Stable Solar Cells , 2022, ACS Applied Energy Materials.
[21] Yue Zhang,et al. A 2.20 eV Bandgap Polymer Donor for Efficient Colorful Semitransparent Organic Solar Cells , 2022, Advanced Functional Materials.
[22] Shuang Yang,et al. Fullerene‐Liquid‐Crystal‐Induced Micrometer‐Scale Charge‐Carrier Diffusion in Organic Bulk Heterojunction , 2022, Advanced materials.
[23] Jianqi Zhang,et al. In situ performance and stability tests of large-area flexible polymer solar cells in the 35-km stratospheric environment , 2022, National science review.
[24] C. Petoukhoff,et al. A Volatile Solid Additive Enables Oligothiophene All‐Small‐Molecule Organic Solar Cells with Excellent Commercial Viability , 2022, Advanced Functional Materials.
[25] H. Yao,et al. Design of a Fully Non-Fused Bulk Heterojunction toward Efficient and Low-Cost Organic Photovoltaics. , 2022, Angewandte Chemie.
[26] Zhishan Bo,et al. A Simple Nonfused Ring Electron Acceptor with a Power Conversion Efficiency Over 16% , 2022, Chinese Journal of Chemistry.
[27] Ruipeng Li,et al. 19.10% Efficiency and 80.5% Fill Factor Layer‐by‐Layer Organic Solar Cells Realized by 4‐Bis(2‐Thienyl)Pyrrole‐2,5‐Dione Based Polymer Additives for Inducing Vertical Segregation Morphology , 2022, Advanced materials.
[28] Jianhui Hou,et al. New Method for Preparing ZnO Layer for Efficient and Stable Organic Solar Cells , 2022, Advanced materials.
[29] C. Brabec,et al. Organic solar cells using oligomer acceptors for improved stability and efficiency , 2022, Nature Energy.
[30] Jianqi Zhang,et al. Reducing Trap Density in Organic Solar Cells via Extending the Fused Ring Donor Unit of an A–D–A‐Type Nonfullerene Acceptor for Over 17% Efficiency , 2022, Advanced materials.
[31] Jiun‐Tai Chen,et al. Achieving High‐Performance Organic Photovoltaics by Morphology Optimization of Active Layers Using Fluorene‐Based Solid Additives , 2022, Solar RRL.
[32] Yuehua Wu,et al. Importance of structural hinderance in performance–stability equilibrium of organic photovoltaics , 2022, Nature Communications.
[33] Zhihao Chen,et al. Vertical-Phase-Locking Effect in Efficient and Stable All-Polymer-Hosted Solar Cells , 2022, ACS Energy Letters.
[34] Zaifang Li,et al. Passivating the Interfacial Chemical Reaction via Self‐Assembly Layer for Efficient and Stable Inverted Nonfullerene Organic Solar Cells , 2022, Solar RRL.
[35] Yuan Zhang,et al. Recent Progress in Hole‐Transporting Layers of Conventional Organic Solar Cells with p–i–n Structure , 2022, Advanced Functional Materials.
[36] Danjie Liu,et al. On the Stability of Non‐fullerene Acceptors and Their Corresponding Organic Solar Cells: Influence of Side Chains , 2022, Advanced Functional Materials.
[37] C. Brabec,et al. Renewed Prospects for Organic Photovoltaics. , 2022, Chemical reviews.
[38] Jianhui Hou,et al. Design and Application of an Asymmetric Naphthalimide-based Molecule with Improved Hydrophobicity for Highly Stable Organic Solar Cells , 2022, JACS Au.
[39] J. Ackermann,et al. A Theoretical Perspective on the Thermodynamic Stability of Polymer Blends for Solar Cells: From Experiments to Predictive Modeling , 2022, Solar RRL.
[40] Jianqi Zhang,et al. Achieving Record-Efficiency Organic Solar Cells upon Tuning the Conformation of Solid Additives , 2022, Journal of the American Chemical Society.
[41] Yiwang Chen,et al. Achieving improved stability and minimal non-radiative recombination loss for over 18% binary organic photovoltaics via versatile interfacial regulation strategy , 2022, Science China Chemistry.
[42] Yezhou Yang,et al. A New Polymer Donor Enables Binary All‐Polymer Organic Photovoltaic Cells with 18% Efficiency and Excellent Mechanical Robustness , 2022, Advanced materials.
[43] C. Brabec,et al. Targeted Adjusting Molecular Arrangement in Organic Solar Cells via a Universal Solid Additive , 2022, Advanced Functional Materials.
[44] Yuanyuan Bai,et al. Thermoplastic elastomer enhanced interface adhesion and bending durability for flexible organic solar cells , 2022, npj Flexible Electronics.
[45] H. Woo,et al. Recent Advances in Nonfullerene Acceptor‐Based Layer‐by‐Layer Organic Solar Cells Using a Solution Process , 2022, Advanced science.
[46] Yezhou Yang,et al. Universal Hole Transporting Material via Mutual Doping for Conventional, Inverted, and Blade-Coated Large-Area Organic Solar Cells , 2022, Chemistry of Materials.
[47] F. Hsu,et al. Stability improvement of inverted organic solar cells with thin organic protective layer , 2022, Organic Electronics.
[48] Qinghe Wu,et al. Reducing Steric Hindrance Around Electronegative Atom in Polymer Simultaneously Enhanced Efficiency and Stability of Organic Solar Cells , 2022, Nano Energy.
[49] Guanghao Lu,et al. Versatile Sequential Casting Processing for Highly Efficient and Stable Binary Organic Photovoltaics , 2022, Advanced materials.
[50] Bumjoon J. Kim,et al. Material Design and Device Fabrication Strategies for Stretchable Organic Solar Cells , 2022, Advanced materials.
[51] Yongsheng Chen,et al. Achieving over 18% Efficiency Organic Solar Cell Enabled by a ZnO-Based Hybrid Electron Transport Layer with an Operational Lifetime up to 5 Years. , 2022, Angewandte Chemie.
[52] Ruipeng Li,et al. Binary Blend All‐Polymer Solar Cells with a Record Efficiency of 17.41% Enabled by Programmed Fluorination Both on Donor and Acceptor Blocks , 2022, Advanced science.
[53] Jianqi Zhang,et al. Binary Organic Solar Cells Breaking 19% via Manipulating the Vertical Component Distribution , 2022, Advanced materials.
[54] F. Gao,et al. Fluorinated Perylene‐Diimides: Cathode Interlayers Facilitating Carrier Collection for High‐Performance Organic Solar Cells , 2022, Advanced materials.
[55] A. Jen,et al. Achieving 19% Power Conversion Efficiency in Planar‐Mixed Heterojunction Organic Solar Cells Using a Pseudosymmetric Electron Acceptor , 2022, Advanced materials.
[56] Jianqi Zhang,et al. “N‐π‐N” Type Oligomeric Acceptor Achieves an OPV Efficiency of 18.19% with Low Energy Loss and Excellent Stability , 2022, Advanced science.
[57] A. Jen,et al. Non-Fullerene Acceptor Doped Block Copolymer for Efficient and Stable Organic Solar Cells , 2022, ACS Energy Letters.
[58] Yuan Zhang,et al. Block copolymer compatibilizer for efficient and stable nonfullerene organic solar cells , 2022, Chemical Engineering Journal.
[59] Ning Li,et al. 17.13% efficiency and superior thermal stability of organic solar cells based on acomb‐shape active blend , 2022, ENERGY & ENVIRONMENTAL MATERIALS.
[60] Yongsheng Chen,et al. Recent progress in organic solar cells (Part II device engineering) , 2022, Science China Chemistry.
[61] F. Gao,et al. A-π-A structured non-fullerene acceptors for stable organic solar cells with efficiency over 17% , 2022, Science China Chemistry.
[62] J. Nelson,et al. Single-junction organic solar cells with over 19% efficiency enabled by a refined double-fibril network morphology , 2022, Nature Materials.
[63] Yong Cui,et al. High efficiency and more functions bring a bright future for organic photovoltaic cells. , 2022, Science bulletin.
[64] Yaowen Li,et al. Realizing 17.5% Efficiency Flexible Organic Solar Cells via Atomic-Level Chemical Welding of Silver Nanowire Electrodes. , 2022, Journal of the American Chemical Society.
[65] Xinrong Yang,et al. Single‐Junction Organic Solar Cells with 19.17% Efficiency Enabled by Introducing One Asymmetric Guest Acceptor , 2022, Advanced materials.
[66] C. Brabec,et al. Fully solution-processed, light-weight, and ultraflexible organic solar cells , 2022, Flexible and Printed Electronics.
[67] C. Brabec,et al. An alcohol-dispersed conducting polymer complex for fully printable organic solar cells with improved stability , 2022, Nature Energy.
[68] Kong Liu,et al. Systematic Investigation on Stability Influence Factors for Organic Solar Cells , 2022, SSRN Electronic Journal.
[69] Zhixiang Wei,et al. Entangled structure morphology by polymer guest enabling mechanically robust organic solar cells with efficiencies of over 16.5% , 2022, Matter.
[70] Songting Tan,et al. Organic solar cells with efficiency of 17.6% and fill factor of 78.3% based on perylene-diimide derivative as cathode interface layer , 2022, Chemical Engineering Journal.
[71] W. Ma,et al. The Importance of Nonequilibrium to Equilibrium Transition Pathways for the Efficiency and Stability of Organic Solar Cells. , 2022, Small.
[72] Xinhui Lu,et al. A Vinylene‐Linker‐Based Polymer Acceptor Featuring a Coplanar and Rigid Molecular Conformation Enables High‐Performance All‐Polymer Solar Cells with Over 17% Efficiency , 2022, Advanced materials.
[73] Jianqi Zhang,et al. Pushing the Efficiency of High Open‐Circuit Voltage Binary Organic Solar Cells by Vertical Morphology Tuning , 2022, Advanced science.
[74] Shinuk Cho,et al. Non‐Fullerene‐Based Inverted Organic Photovoltaic Device with Long‐Term Stability , 2022, ENERGY & ENVIRONMENTAL MATERIALS.
[75] Jianqi Zhang,et al. Layer‐by‐Layer Processed PM6:Y6‐Based Stable Ternary Polymer Solar Cells with Improved Efficiency over 18% by Incorporating an Asymmetric Thieno[3,2‐b]indole‐Based Acceptor , 2022, Advanced Functional Materials.
[76] C. Brabec,et al. Oligomer-assisted Photoactive Layers Enable >18% Efficiency of Organic Solar Cells. , 2022, Angewandte Chemie.
[77] J. Kettle,et al. Design for a Sustainability Approach to Organic Solar Cell Design: the Use of Machine Learning to Quantify the Trade-off between Performance, Stability, and Environmental Impact , 2022, The Journal of Physical Chemistry C.
[78] Yezhou Yang,et al. A New PEDOT Derivative for Efficient Organic Solar Cell with a Fill Factor of 0.80 , 2022, Advanced Energy Materials.
[79] Chunru Wang,et al. Non‐Radiative Recombination Energy Losses in Non‐Fullerene Organic Solar Cells , 2022, Advanced Functional Materials.
[80] M. Shi,et al. Desired open-circuit voltage increase enables efficiencies approaching 19% in symmetric-asymmetric molecule ternary organic photovoltaics , 2022, Joule.
[81] Chunhui Liu,et al. High‐Performance Indoor Organic Solar Cells Based on a Double‐Cable Conjugated Polymer , 2022, Solar RRL.
[82] Juyoung Kim,et al. Highly Elastic and Corrosion-Resistive Metallic Glass Thin Films for Flexible Encapsulation. , 2022, ACS applied materials & interfaces.
[83] Jianyu Yuan,et al. Polymerizing small molecular acceptors for efficient all‐polymer solar cells , 2022, InfoMat.
[84] K. Wong,et al. Achieving high efficiency and well-kept ductility in ternary all-polymer organic photovoltaic blends thanks to two well miscible donors , 2022, Matter.
[85] A. Saeki,et al. Machine Learning-Assisted Development of Organic Solar Cell Materials: Issues, Analyses, and Outlooks. , 2021, The journal of physical chemistry letters.
[86] Jianhui Hou,et al. Tandem Organic Solar Cell with 20.2% Efficiency , 2021, Joule.
[87] Yanming Sun,et al. Vertically optimized phase separation with improved exciton diffusion enables efficient organic solar cells with thick active layers , 2021, Nature Communications.
[88] Changduk Yang,et al. Effect of Third Component on Efficiency and Stability in Ternary Organic Solar Cells: More than a Simple Superposition , 2021, Solar RRL.
[89] Jianhui Hou,et al. Fluidic Manipulating of Printable Zinc Oxide for Flexible Organic Solar Cells , 2021, Advanced materials.
[90] F. Gao,et al. A guest-assisted molecular-organization approach for >17% efficiency organic solar cells using environmentally friendly solvents , 2021, Nature Energy.
[91] Yanming Sun,et al. High-efficiency organic solar cells enabled by an alcohol-washable solid additive , 2021, Science China Chemistry.
[92] Junwei Liu,et al. Thermoplastic Elastomer Tunes Phase Structure and Promotes Stretchability of High‐Efficiency Organic Solar Cells , 2021, Advanced materials.
[93] Tao Zhang,et al. Multi-Functional Solid Additive Induced Favorable Vertical Phase Separation and Ordered Molecular Packing for Highly Efficient Layer-by-Layer Organic Solar Cells. , 2021, Small.
[94] Yongfang Li,et al. Volatilizable Solid Additive‐Assisted Treatment Enables Organic Solar Cells with Efficiency over 18.8% and Fill Factor Exceeding 80% , 2021, Advanced materials.
[95] Juyoung Kim,et al. Amorphous Alumina Film Robust under Cyclic Deformation: a Highly Impermeable and a Highly Flexible Encapsulation Material. , 2021, ACS applied materials & interfaces.
[96] S. Forrest,et al. Non-fullerene acceptor organic photovoltaics with intrinsic operational lifetimes over 30 years , 2021, Nature Communications.
[97] Yuze Lin,et al. Intrinsically inert hyperbranched interlayer for enhanced stability of organic solar cells. , 2021, Science bulletin.
[98] Jianqi Zhang,et al. Single‐Junction Organic Photovoltaic Cell with 19% Efficiency , 2021, Advanced materials.
[99] Jianqi Zhang,et al. Completely non-fused electron acceptor with 3D-interpenetrated crystalline structure enables efficient and stable organic solar cell , 2021, Nature Communications.
[100] Weijie Song,et al. Efficient organic solar cells with superior stability based on PM6:BTP-eC9 blend and AZO/Al cathode , 2021, iScience.
[101] Jianhui Hou,et al. A Tandem Organic Photovoltaic Cell with 19.6% Efficiency Enabled by Light Distribution Control , 2021, Advanced materials.
[102] Weiwei Li,et al. Mechanical Robust Flexible Single-Component Organic Solar Cells. , 2021, Small methods.
[103] Tao Wang,et al. Simultaneously Enhanced Efficiency and Operational Stability of Nonfullerene Organic Solar Cells via Solid-Additive-Mediated Aggregation Control. , 2021, Small.
[104] Hasitha C. Weerasinghe,et al. A Review on Emerging Barrier Materials and Encapsulation Strategies for Flexible Perovskite and Organic Photovoltaics , 2021, Advanced Energy Materials.
[105] H. Ade,et al. The performance-stability conundrum of BTP-based organic solar cells , 2021, Joule.
[106] K. S. Narayan,et al. Dominant Effect of UV-Light-Induced “Burn-in” Degradation in Non-Fullerene Acceptor Based Organic Solar Cells , 2021 .
[107] K. Sun,et al. Eutectic phase behavior induced by a simple additive contributes to efficient organic solar cells , 2021 .
[108] Haijun Fan,et al. Organic Solar Cells with 18% Efficiency Enabled by an Alloy Acceptor: A Two‐in‐One Strategy , 2021, Advanced materials.
[109] Hongzheng Chen,et al. Molecular insights of exceptionally photostable electron acceptors for organic photovoltaics , 2021, Nature Communications.
[110] Yuan Zhang,et al. Non-fullerene acceptors with branched side chains and improved molecular packing to exceed 18% efficiency in organic solar cells , 2021, Nature Energy.
[111] T. Anthopoulos,et al. 18.4% Organic Solar Cells Using a High Ionization Energy Self-Assembled Monolayer as Hole Extraction Interlayer. , 2021, ChemSusChem.
[112] Tao Wang,et al. Balancing the efficiency, stability, and cost potential for organic solar cells via a new figure of merit , 2021 .
[113] Wei Pan,et al. An Efficiency of 16.46% and a T80 Lifetime of Over 4000 h for the PM6:Y6 Inverted Organic Solar Cells Enabled by Surface Acid Treatment of the Zinc Oxide Electron Transporting Layer. , 2021, ACS applied materials & interfaces.
[114] Shengjie Xu,et al. Design of All-Fused-Ring Electron Acceptors with High Thermal, Chemical, and Photochemical Stability for Organic Photovoltaics , 2021 .
[115] Hongzheng Chen,et al. High-performance and eco-friendly semitransparent organic solar cells for greenhouse applications , 2021, Joule.
[116] Wenjun Zhang,et al. A Review on Encapsulation Technology from Organic Light Emitting Diodes to Organic and Perovskite Solar Cells , 2021, Advanced Functional Materials.
[117] Zhongmin Wang,et al. Cross-Linkable and Alcohol-Soluble Pyridine-Incorporated Polyfluorene Derivative as a Cathode Interface Layer for High-Efficiency and Stable Organic Solar Cells. , 2021, ACS applied materials & interfaces.
[118] Jun Zhou,et al. Electric‐Induced Degradation of Cathode Interface Layer in PM7:IT‐4F Polymer Solar Cells , 2021 .
[119] Hang Yin,et al. Suppressing Kinetic Aggregation of Non‐Fullerene Acceptor via Versatile Alloy States Enables High‐Efficiency and Stable Ternary Polymer Solar Cells , 2021, Advanced Functional Materials.
[120] Jianhui Hou,et al. Highly Stable Organic Solar Cells Based on an Ultraviolet-Resistant Cathode Interfacial Layer , 2021 .
[121] C. Brabec,et al. Elucidating the Full Potential of OPV Materials Utilizing a High-Throughput Robot-Based Platform and Machine Learning , 2021 .
[122] H. Ade,et al. A molecular interaction–diffusion framework for predicting organic solar cell stability , 2021, Nature Materials.
[123] R. Friend,et al. The Path to 20% Power Conversion Efficiencies in Nonfullerene Acceptor Organic Solar Cells , 2020, Advanced Energy Materials.
[124] Weihua Tang,et al. Highly efficient organic solar cells enabled by a porous ZnO/PEIE electron transport layer with enhanced light trapping , 2020, Science China Materials.
[125] K. Leo,et al. Organic Solar Cells—The Path to Commercial Success , 2020, Advanced Energy Materials.
[126] Q. Burlingame,et al. It’s time to focus on organic solar cell stability , 2020, Nature Energy.
[127] Y. Zou,et al. Emerging Approaches in Enhancing the Efficiency and Stability in Non‐Fullerene Organic Solar Cells , 2020, Advanced Energy Materials.
[128] Shinuk Cho,et al. 17% Non‐Fullerene Organic Solar Cells with Annealing‐Free Aqueous MoOx , 2020, Advanced science.
[129] W. Teahan,et al. Enhancing the stability of organic photovoltaics through machine learning , 2020, Nano Energy.
[130] Yongfang Li,et al. Polymerized Small Molecule Acceptors for High Performance All-polymer Solar Cells. , 2020, Angewandte Chemie.
[131] Rawad K. Hallani,et al. Self-Assembled Monolayer Enables Hole Transport Layer-Free Organic Solar Cells with 18% Efficiency and Improved Operational Stability , 2020 .
[132] Yiwang Chen,et al. Printable and Large‐Area Organic Solar Cells Enabled by a Ternary Pseudo‐Planar Heterojunction Strategy , 2020, Advanced Functional Materials.
[133] Norbert Fabricius,et al. Standardization as an Instrument to Accelerate the Development of Stable Emerging Photovoltaic Technologies—The IEC TS 62876‐2‐1:2018—Technical Specification for the Stability Testing of Photovoltaic Devices Enabled by Nanomaterials , 2020 .
[134] K. Wong,et al. High-Efficiency Indoor Organic Photovoltaics with a Band-Aligned Interlayer , 2020, Joule.
[135] L. Meng,et al. Cathode engineering with perylene-diimide interlayer enabling over 17% efficiency single-junction organic solar cells , 2020, Nature Communications.
[136] Takao Someya,et al. The Future of Flexible Organic Solar Cells , 2020, Advanced Energy Materials.
[137] H. Yao,et al. PBDB-T and its derivatives: A family of polymer donors enables over 17% efficiency in organic photovoltaics , 2020 .
[138] A. Uddin,et al. Progress in Stability of Organic Solar Cells , 2020, Advanced science.
[139] Qiang Wu,et al. Simultaneous enhanced efficiency and thermal stability in organic solar cells from a polymer acceptor additive , 2020, Nature Communications.
[140] C. Brabec,et al. Unraveling the Microstructure‐Related Device Stability for Polymer Solar Cells Based on Nonfullerene Small‐Molecular Acceptors , 2020, Advanced materials.
[141] H. Yao,et al. Realizing Ultrahigh Mechanical Flexibility and >15% Efficiency of Flexible Organic Solar Cells via a “Welding” Flexible Transparent Electrode , 2020, Advanced materials.
[142] A. Jen,et al. Graphdiyne Derivative as Multifunctional Solid Additive in Binary Organic Solar Cells with 17.3% Efficiency and High Reproductivity , 2020, Advanced materials.
[143] G. Andersson,et al. Mechanism of Organic Solar Cell Performance Degradation upon Thermal Annealing of MoOx , 2020 .
[144] L. Meng,et al. Achieving Fast Charge Separation and Low Nonradiative Recombination Loss by Rational Fluorination for High‐Efficiency Polymer Solar Cells , 2019, Advanced materials.
[145] C. Brabec,et al. Revealing Hidden UV Instabilities in Organic Solar Cells by Correlating Device and Material Stability , 2019, Advanced Energy Materials.
[146] S. Forrest,et al. Intrinsically stable organic solar cells under high-intensity illumination , 2019, Nature.
[147] X. Gu,et al. Aggregation‐Induced Multilength Scaled Morphology Enabling 11.76% Efficiency in All‐Polymer Solar Cells Using Printing Fabrication , 2019, Advanced materials.
[148] C. Brabec,et al. An Operando Study on the Photostability of Nonfullerene Organic Solar Cells , 2019, Solar RRL.
[149] Liyan Yu,et al. Diffusion-Limited Crystallization: A Rationale for the Thermal Stability of Non-Fullerene Solar Cells. , 2019, ACS applied materials & interfaces.
[150] C. Brabec,et al. Thin Film Encapsulation of Organic Solar Cells by Direct Deposition of Polysilazanes from Solution , 2019, Advanced Energy Materials.
[151] Joshua H. Carpenter,et al. Delineation of Thermodynamic and Kinetic Factors that Control Stability in Non-fullerene Organic Solar Cells , 2019, Joule.
[152] Hongzheng Chen,et al. Simple non-fused electron acceptors for efficient and stable organic solar cells , 2019, Nature Communications.
[153] Jacek Ulanski,et al. Single-Junction Organic Solar Cell with over 15% Efficiency Using Fused-Ring Acceptor with Electron-Deficient Core , 2019, Joule.
[154] C. Brabec,et al. Evidencing Excellent Thermal‐ and Photostability for Single‐Component Organic Solar Cells with Inherently Built‐In Microstructure , 2019, Advanced Energy Materials.
[155] Ning Li,et al. Stability of Nonfullerene Organic Solar Cells: from Built‐in Potential and Interfacial Passivation Perspectives , 2019, Advanced Energy Materials.
[156] H. Ade,et al. Quenching to the Percolation Threshold in Organic Solar Cells , 2019, Joule.
[157] Xianjie Liu,et al. 12.5% Flexible Nonfullerene Solar Cells by Passivating the Chemical Interaction Between the Active Layer and Polymer Interfacial Layer , 2019, Advanced materials.
[158] G. Bazan,et al. Ambient Processable and Stable All‐Polymer Organic Solar Cells , 2019, Advanced Functional Materials.
[159] W. Ma,et al. Hierarchical Morphology Stability under Multiple Stresses in Organic Solar Cells , 2019, ACS Energy Letters.
[160] C. Brabec,et al. Efficient Polymer Solar Cells Based on Non-fullerene Acceptors with Potential Device Lifetime Approaching 10 Years , 2019, Joule.
[161] T. Someya,et al. Durable Ultraflexible Organic Photovoltaics with Novel Metal‐Oxide‐Free Cathode , 2018, Advanced Functional Materials.
[162] Jie Zhu,et al. Design and application of volatilizable solid additives in non-fullerene organic solar cells , 2018, Nature Communications.
[163] Long Ye,et al. Miscibility–Function Relations in Organic Solar Cells: Significance of Optimal Miscibility in Relation to Percolation , 2018 .
[164] T. Someya,et al. Self-powered ultra-flexible electronics via nano-grating-patterned organic photovoltaics , 2018, Nature.
[165] F. Huang,et al. 11.2% All‐Polymer Tandem Solar Cells with Simultaneously Improved Efficiency and Stability , 2018, Advanced materials.
[166] Jianhui Hou,et al. Printable MoOx Anode Interlayers for Organic Solar Cells , 2018, Advanced materials.
[167] Olle Inganäs,et al. Organic Photovoltaics over Three Decades , 2018, Advanced materials.
[168] H. Fitzek,et al. Influence of Environmentally Affected Hole-Transport Layers on Spatial Homogeneity and Charge-Transport Dynamics of Organic Solar Cells. , 2018, ACS applied materials & interfaces.
[169] Yongfang Li,et al. A low cost and high performance polymer donor material for polymer solar cells , 2018, Nature Communications.
[170] Yongfang Li,et al. Constructing a Strongly Absorbing Low-Bandgap Polymer Acceptor for High-Performance All-Polymer Solar Cells. , 2017, Angewandte Chemie.
[171] Takao Someya,et al. Stretchable and waterproof elastomer-coated organic photovoltaics for washable electronic textile applications , 2017 .
[172] James H. Bannock,et al. Burn‐in Free Nonfullerene‐Based Organic Solar Cells , 2017 .
[173] Yun Zhang,et al. Molecular Optimization Enables over 13% Efficiency in Organic Solar Cells. , 2017, Journal of the American Chemical Society.
[174] Feng Gao,et al. Fullerene‐Free Polymer Solar Cells with over 11% Efficiency and Excellent Thermal Stability , 2016, Advanced materials.
[175] Scott E. Watkins,et al. Improved lifetimes of organic solar cells with solution‐processed molybdenum oxide anode‐modifying layers , 2015 .
[176] R. Dauskardt,et al. Molecular-Scale Understanding of Cohesion and Fracture in P3HT:Fullerene Blends. , 2015, ACS applied materials & interfaces.
[177] C. Müller. On the Glass Transition of Polymer Semiconductors and Its Impact on Polymer Solar Cell Stability , 2015 .
[178] T. Ahn,et al. Conflicted Effects of a Solvent Additive on PTB7:PC71BM Bulk Heterojunction Solar Cells , 2015 .
[179] Daoben Zhu,et al. An Electron Acceptor Challenging Fullerenes for Efficient Polymer Solar Cells , 2015, Advanced materials.
[180] C. Brabec,et al. Electron Barrier Formation at the Organic‐Back Contact Interface is the First Step in Thermal Degradation of Polymer Solar Cells , 2014 .
[181] Eszter Voroshazi,et al. Decohesion Kinetics of PEDOT:PSS Conducting Polymer Films , 2014 .
[182] Mikkel Jørgensen,et al. Comparison of UV‐Curing, Hotmelt, and Pressure Sensitive Adhesive as Roll‐to‐Roll Encapsulation Methods for Polymer Solar Cells , 2013 .
[183] Sandra Kouijzer,et al. Predicting morphologies of solution processed polymer:fullerene blends. , 2013, Journal of the American Chemical Society.
[184] A. Majumdar,et al. Opportunities and challenges for a sustainable energy future , 2012, Nature.
[185] Frederik C. Krebs,et al. Economic assessment of solar electricity production from organic-based photovoltaic modules in a domestic environment , 2011 .
[186] Hans-Joachim Egelhaaf,et al. Reversible and irreversible degradation of organic solar cell performance by oxygen , 2011 .
[187] Suren A. Gevorgyan,et al. Consensus stability testing protocols for organic photovoltaic materials and devices , 2011 .
[188] Olle Inganäs,et al. Organic photovoltaics: Avoiding indium , 2011 .
[189] Suren A. Gevorgyan,et al. Degradation patterns in water and oxygen of an inverted polymer solar cell. , 2010, Journal of the American Chemical Society.
[190] Erin Baker,et al. Estimating the manufacturing cost of purely organic solar cells , 2009 .
[191] Stelios A. Choulis,et al. Thermal degradation mechanisms of PEDOT:PSS , 2009 .
[192] Kristian O. Sylvester-Hvid,et al. Efficiency limiting factors of organic bulk heterojunction solar cells identified by electrical impedance spectroscopy , 2007 .
[193] C. Charton,et al. Properties of ITO on PET film in dependence on the coating conditions and thermal processing , 2005 .
[194] C. Brabec,et al. Solution processed oxygen and moisture barrier based on glass flakes for encapsulation of organic (opto-) electronic devices , 2021 .
[195] Martin Helgesen,et al. Novel acrylic monomers for organic photovoltaics encapsulation , 2020 .