Enhanced hindrance from phenyl outer side chains on nonfullerene acceptor enables unprecedented simultaneous enhancement in organic solar cell performances with 16.7% efficiency
暂无分享,去创建一个
K. Wong | H. Ade | Xinhui Zou | P. Chow | Jianquan Zhang | Zhengxing Peng | C. Zhan | Yuan Chang | Philip C. Y. Chow | Yuzhong Chen | Han Yu | Gaoda Chai | Y. Jia | Dian Yu | Liwei Yang
[1] M. Zhang,et al. Efficient Organic Solar Cell with 16.88% Efficiency Enabled by Refined Acceptor Crystallization and Morphology with Improved Charge Transfer and Transport Properties , 2020, Advanced Energy Materials.
[2] Qiang Wu,et al. Simultaneous enhanced efficiency and thermal stability in organic solar cells from a polymer acceptor additive , 2020, Nature Communications.
[3] Daize Mo,et al. Bromination: An Alternative Strategy for Non‐Fullerene Small Molecule Acceptors , 2020, Advanced science.
[4] Hongzheng Chen,et al. Over 17% efficiency ternary organic solar cells enabled by two non-fullerene acceptors working in an alloy-like model , 2020 .
[5] C. Zhong,et al. Altering alkyl-chains branching positions for boosting the performance of small-molecule acceptors for highly efficient nonfullerene organic solar cells , 2020, Science China Chemistry.
[6] K. Wong,et al. A 16.4% efficiency organic photovoltaic cell enabled using two donor polymers with their side-chains oriented differently by a ternary strategy , 2020 .
[7] L. Meng,et al. High Efficiency Polymer Solar Cells with Efficient Hole Transfer at Zero Highest Occupied Molecular Orbital Offset between Methylated Polymer Donor and Brominated Acceptor. , 2020, Journal of the American Chemical Society.
[8] Young Woong Lee,et al. Subtle Polymer Donor and Molecular Acceptor Design Enable Efficient Polymer Solar Cells with a Very Small Energy Loss , 2020, Advanced Functional Materials.
[9] M. Zhang,et al. Asymmetrical side-chain engineering of small-molecule acceptors enable high-performance nonfullerene organic solar cells , 2020 .
[10] H. Ade,et al. Alkyl Chain Tuning of Small Molecule Acceptors for Efficient Organic Solar Cells , 2019 .
[11] Xiaozhang Zhu,et al. Subtle Molecular Tailoring Induces Significant Morphology Optimization Enabling over 16% Efficiency Organic Solar Cells with Efficient Charge Generation , 2019, Advanced materials.
[12] Yongfang Li,et al. A new non-fullerene acceptor based on the combination of a heptacyclic benzothiadiazole unit and a thiophene-fused end group achieving over 13% efficiency. , 2019, Physical chemistry chemical physics : PCCP.
[13] B. Liu,et al. A monothiophene unit incorporating both fluoro and ester substitution enabling high-performance donor polymers for non-fullerene solar cells with 16.4% efficiency , 2019, Energy & Environmental Science.
[14] L. Meng,et al. Effects of Short‐Axis Alkoxy Substituents on Molecular Self‐Assembly and Photovoltaic Performance of Indacenodithiophene‐Based Acceptors , 2019, Advanced Functional Materials.
[15] Y. Zou,et al. Semitransparent solar cells with over 12% efficiency based on a new low bandgap fluorinated small molecule acceptor , 2019, Materials Chemistry Frontiers.
[16] Monika Gupta,et al. 14%-efficiency fullerene-free ternary solar cell enabled by designing a short side-chain substituted small-molecule acceptor , 2019, Nano Energy.
[17] Ming‐Chou Chen,et al. 16.7%-efficiency ternary blended organic photovoltaic cells with PCBM as the acceptor additive to increase the open-circuit voltage and phase purity , 2019, Journal of Materials Chemistry A.
[18] Yong Cui,et al. Eco‐Compatible Solvent‐Processed Organic Photovoltaic Cells with Over 16% Efficiency , 2019, Advanced materials.
[19] J. Yao,et al. A nonfullerene acceptor with a 1000 nm absorption edge enables ternary organic solar cells with improved optical and morphological properties and efficiencies over 15% , 2019, Energy & Environmental Science.
[20] Zhishan Bo,et al. High‐Efficiency As‐Cast Organic Solar Cells Based on Acceptors with Steric Hindrance Induced Planar Terminal Group , 2019, Advanced Energy Materials.
[21] Wei Ma,et al. Single‐Junction Polymer Solar Cells with 16.35% Efficiency Enabled by a Platinum(II) Complexation Strategy , 2019, Advanced materials.
[22] Wei Li,et al. Correlating the electron-donating core structure with morphology and performance of carbon oxygen-bridged ladder-type non-fullerene acceptor based organic solar cells , 2019, Nano Energy.
[23] F. Gao,et al. Over 16% efficiency organic photovoltaic cells enabled by a chlorinated acceptor with increased open-circuit voltages , 2019, Nature Communications.
[24] Thuc‐Quyen Nguyen,et al. Side-Chain Engineering of Nonfullerene Acceptors for Near-Infrared Organic Photodetectors and Photovoltaics , 2019, ACS Energy Letters.
[25] Shouli Ming,et al. Impact of the Bonding Sites at the Inner or Outer π-Bridged Positions for Non-Fullerene Acceptors. , 2019, ACS applied materials & interfaces.
[26] C. Zhong,et al. Unconjugated Side‐Chain Engineering Enables Small Molecular Acceptors for Highly Efficient Non‐Fullerene Organic Solar Cells: Insights into the Fine‐Tuning of Acceptor Properties and Micromorphology , 2019, Advanced Functional Materials.
[27] X. Zhan,et al. Nonfullerene All-Small-Molecule Organic Solar Cells , 2019, ACS Energy Letters.
[28] Somnath Dey. Recent Progress in Molecular Design of Fused Ring Electron Acceptors for Organic Solar Cells. , 2019, Small.
[29] Jacek Ulanski,et al. Single-Junction Organic Solar Cell with over 15% Efficiency Using Fused-Ring Acceptor with Electron-Deficient Core , 2019, Joule.
[30] Christoph J. Brabec,et al. Critical review of the molecular design progress in non-fullerene electron acceptors towards commercially viable organic solar cells. , 2019, Chemical Society reviews.
[31] Wenkai Zhong,et al. Achieving over 16% efficiency for single-junction organic solar cells , 2019, Science China Chemistry.
[32] Tao Zhang,et al. Achieving Over 15% Efficiency in Organic Photovoltaic Cells via Copolymer Design , 2019, Advanced materials.
[33] Shuguang Wen,et al. A Simple Phenyl Group Introduced at the Tail of Alkyl Side Chains of Small Molecular Acceptors: New Strategy to Balance the Crystallinity of Acceptors and Miscibility of Bulk Heterojunction Enabling Highly Efficient Organic Solar Cells , 2019, Advanced materials.
[34] H. Ade,et al. A Highly Crystalline Fused‐Ring n‐Type Small Molecule for Non‐Fullerene Acceptor Based Organic Solar Cells and Field‐Effect Transistors , 2018, Advanced Functional Materials.
[35] Zhishan Bo,et al. Nonfullerene Acceptors with Enhanced Solubility and Ordered Packing for High-Efficiency Polymer Solar Cells , 2018, ACS Energy Letters.
[36] Junxiang Zhang,et al. Effect of Isomerization on High-Performance Nonfullerene Electron Acceptors. , 2018, Journal of the American Chemical Society.
[37] Yongfang Li,et al. Side‐Chain Impact on Molecular Orientation of Organic Semiconductor Acceptors: High Performance Nonfullerene Polymer Solar Cells with Thick Active Layer over 400 nm , 2018, Advanced Energy Materials.
[38] Hongbin Wu,et al. Nonfullerene Polymer Solar Cells Based on a Main-Chain Twisted Low-Bandgap Acceptor with Power Conversion Efficiency of 13.2% , 2018, ACS Energy Letters.
[39] Fei Huang,et al. Nonfullerene Acceptor Molecules for Bulk Heterojunction Organic Solar Cells. , 2018, Chemical reviews.
[40] Fujun Zhang,et al. Conformation Locking on Fused‐Ring Electron Acceptor for High‐Performance Nonfullerene Organic Solar Cells , 2018 .
[41] C. McNeill,et al. An Alkylated Indacenodithieno[3,2‐b]thiophene‐Based Nonfullerene Acceptor with High Crystallinity Exhibiting Single Junction Solar Cell Efficiencies Greater than 13% with Low Voltage Losses , 2018, Advanced materials.
[42] Ke Gao,et al. Dithienopicenocarbazole-Based Acceptors for Efficient Organic Solar Cells with Optoelectronic Response Over 1000 nm and an Extremely Low Energy Loss. , 2018, Journal of the American Chemical Society.
[43] R. Friend,et al. Organic solar cells based on non-fullerene acceptors. , 2018, Nature materials.
[44] T. Marks,et al. Enhancing Indacenodithiophene Acceptor Crystallinity via Substituent Manipulation Increases Organic Solar Cell Efficiency , 2017 .
[45] Wanbin Li,et al. A universal approach to improve electron mobility without significant enlarging phase separation in IDT-based non-fullerene acceptor organic solar cells , 2017 .
[46] Zhishan Bo,et al. Fused‐Ring Acceptors with Asymmetric Side Chains for High‐Performance Thick‐Film Organic Solar Cells , 2017, Advanced materials.
[47] James H. Bannock,et al. Burn‐in Free Nonfullerene‐Based Organic Solar Cells , 2017 .
[48] Zhishan Bo,et al. Exploiting Noncovalently Conformational Locking as a Design Strategy for High Performance Fused-Ring Electron Acceptor Used in Polymer Solar Cells. , 2017, Journal of the American Chemical Society.
[49] Yongfang Li,et al. Side-Chain Isomerization on an n-type Organic Semiconductor ITIC Acceptor Makes 11.77% High Efficiency Polymer Solar Cells. , 2016, Journal of the American Chemical Society.
[50] A. Heeger,et al. High-Performance Electron Acceptor with Thienyl Side Chains for Organic Photovoltaics. , 2016, Journal of the American Chemical Society.
[51] Hongbin Wu,et al. n-Type Water/Alcohol-Soluble Naphthalene Diimide-Based Conjugated Polymers for High-Performance Polymer Solar Cells. , 2016, Journal of the American Chemical Society.
[52] Dieter Neher,et al. Competition between recombination and extraction of free charges determines the fill factor of organic solar cells , 2015, Nature Communications.
[53] Daoben Zhu,et al. An Electron Acceptor Challenging Fullerenes for Efficient Polymer Solar Cells , 2015, Advanced materials.
[54] Wei Jiang,et al. Integrated Molecular, Interfacial, and Device Engineering towards High‐Performance Non‐Fullerene Based Organic Solar Cells , 2014, Advanced materials.
[55] A. Hexemer,et al. Soft x-ray scattering facility at the Advanced Light Source with real-time data processing and analysis. , 2012, The Review of scientific instruments.
[56] R. J. Kline,et al. Quantitative analysis of lattice disorder and crystallite size in organic semiconductor thin films , 2011 .
[57] Wei Lin Leong,et al. Differential Resistance Analysis of Charge Carrier Losses in Organic Bulk Heterojunction Solar Cells: Observing the Transition from Bimolecular to Trap‐Assisted Recombination and Quantifying the Order of Recombination , 2011 .
[58] Howard A. Padmore,et al. A SAXS/WAXS/GISAXS Beamline with Multilayer Monochromator , 2010 .
[59] Christoph J. Brabec,et al. Recombination and loss analysis in polythiophene based bulk heterojunction photodetectors , 2002 .
[60] George G. Malliaras,et al. Electrical characteristics and efficiency of single-layer organic light-emitting diodes , 1998 .