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[3] Ran Qin+, Weitao Yang+, Shuixing Li, Tsz-Ki Lau, Zhipeng Yu, Zhang Liu, Minmin Shi, Xinhui Lu*, Chang-Zhi Li*, and Hongzheng Chen*, Enhance intramolecular charge transfer of unfused electron acceptors for efficient organic solar cells, Materials Chemistry Frontiers, 2019, 3, 513-519.
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[4] Jun Li, Kangrong Yan, Jiehuan Chen, Yingzhu Zhang, Weitao Yang, Xiaomei Lian, Gang Wu∗, and Hongzheng Chen∗, Hydrogen bond enables highly efficient and stable two-dimensional perovskite solar cells based on 4-pyridine-ethylamine, Organic Electronics, 2019, 67, 122-127.
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[6] Hongzheng Chen*, Electron-deficient core fused-ring based non-Fullerene acceptor enables over 15% efficiency in single junction organic solar cells, Science China Chemistry, 2019, 62, 403-404.
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[8] Shuixing Li, Lingling Zhan, Chenkai Sun, Haiming Zhu,* Guanqing Zhou,| Weitao Yang, Minmin Shi*, Chang-Zhi Li*, Jianhui Hou, Yongfang Li, and Hongzheng Chen*, Highly efficient fullerene-free organic solar cells operate at near zero highest occupied molecular orbital offsets, Journal of the American Chemical Sociey, 2019, 141, 3073-3082.
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[9] Ning Wang, Weitao Yang, Shuixing Li, Minmin Shi*, Tsz-Ki Lau, Xinhui Lu, Rafi Shikler, Chang-Zhi Li, and Hongzheng Chen*, A non-fullerene acceptor enables efficient P3HT-based organic solar cells with small voltage loss and thickness insensitivity, Chinese Chemical Letters, 2019, 30, 6, 1277-1281.
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[12] Shuoxun Tian, Jiehuan Chen, Xiaomei Lian, Yaqin Wang, Yingzhu Zhang, Weitao Yang, Gang Wu*, Weiming Qiu*, and Hongzheng Chen*, Engineering the underlying surface to manipulate the growth of 2D perovskites for highly efficient solar cells, Journal of Materials Chemistry A, 2019, 7, 14027-14032.
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[13] Delong Liu, Ying Zhang, Lingling Zhan, Tsz-Ki Lau, Hang Yin, Patrick W. K. Fong, Shu Kong So, Shaoqing Zhang, Xinhui Lu*, Jianhui Hou*, Hongzheng Chen*, Wai-Yeung Wong*, and Gang Li*, Design of wide-bandgap polymers with deeper ionization potential enables efficient ternary nonfullerene polymer solar cells with 13% efficiency, Journal of Materials Chemistry A, 2019, 7, 14153-14162.
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[14] Xiaomei Lian, Jiehuan Chen, Minchao Qin, Yingzhu Zhang, Shuoxun Tian, Xinhui Lu, Gang Wu* and Hongzheng Chen*, The second spacer cation assisted growth of 2D perovskite film with oriented large grain for highly efficient and stable solar cells, Angewandte Chemie- Intenational Edition, 2019, 58, 9409-9413.
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[16] Yingzhu Zhang, Jiehuan Chen, Xiaomei Lian, Minchao Qin, Jun Li, Thomas Rieks Andersen, Xinhui Lu, Gang Wu*, Hanying Li, and Hongzheng Chen*, Highly efficient guanidinium-based quasi two-dimensional perovskite solar cells via a two-step post-treatment process, Small Methods, 2019, 3, 1900375.
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[17] Shizhe Geng, Weitao Yang, Jian Gao, Shuixing Li, Minmin Shi*, Tsz-Ki Lau, Xinhui Lu, Chang-Zhi Li, and Hongzheng Chen*, Non-fullerene acceptors with a thieno[3,4-c]pyrrole-4,6-dione (TPD) core for efficient organic solar cells, Chinese Journal of Polymer Science, 2019, 37, 1005-1014.
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[18] Xuankun Guo, Jiehuan Chen, Xiaomei Lian, Yaqin Wang, Gang Wu* and Hongzheng Chen*, Sn-Pb binary perovskite films with high crystalline quality for high performance solar cells, Chinese Journal of Chemistry, 2019, 37, 1031-1035
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[19] Xiaomei Lian, Jiehuan Chen, Yingzhu Zhang, Minchao Qin, Thomas Rieks Andersena, Jun Ling, Gang Wu*, Xinhui Lu, Deren Yang, and Hongzheng Chen*, Solvation effect in precursor solution enables over 16% efficiency in thick 2D perovskite solar cells, Journal of Materials Chemistry A, 2019, 7, 19423-19429.
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[21] Lingling Zhan, Shuixing Li, Shuhua Zhang, Tsz-Ki Lau, Thomas Rieks Andersen, Xinhui Lu, Minmin Shi, Chang-Zhi Li, Gang Li*, and Hongzheng Chen*, Combining fused-ring and unfused-core electron acceptors enables efficient ternary organic solar cells with enhanced fill factor and broad compositional tolerance, Solar RRL, 2019, 3, 1900317
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[22] Xiaomei Lian, Jiehuan Chen, Yingzhu Zhang, Shuoxun Tian, Minchao Qin, Jun Li, Thomas Rieks Andersen, Gang Wu*, Xinhui Lu, and Hongzheng Chen*, Two-dimensional inverted planar perovskite solar cells with efficiency over 15% via solvent and interface engineering, Journal of Materials Chemistry A, 2019, 7, 18980-18986.
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[25] Weitao Yang, Danming Zhong, Minmin Shi, Shaoxing Qu*, and Hongzheng Chen*, Toward highly thermal stable perovskite solar cells by rational design of interfacial layer, iScience, 2019, 22, 534–543.
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[26] Xiaomei Lian, Jiehuan Chen, Yingzhu Zhang, Minchao Qin, Jun Li, Shuoxun Tian, Weitao Yang, Xinhui Lu, Gang Wu*, and Hongzheng Chen*, Highly efficient Sn/Pb binary perovskite solar cell via precursor engineering: A two-step fabrication process, Advanced Functional Materials, 2019, 29, 1807024.
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[27] Haoran Liu, Zhixi Liu, Shuxu Wang, Jiang Huang*, Huanxin Ju, Qi Chen, Junsheng Yu, Hongzheng Chen, and Chang-Zhi Li*, Boosting organic-metal oxide heterojunction via conjugated small molecules for efficient and stable nonfullerene polymer solar cells, Advanced Energy Materials, 2019, 9, 1900887.
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[28] Huanbin Li, Jiake Wu, Kohtaro Takahashi, Jie Ren, Ruihan Wu, Hongyi Cai, Jieru Wang, Huolin L. Xin, Qian Miao, Hiroko Yamada, Hongzhen Chen, and Hanying Li*, Organic hererojunctions formed by interfacing two single crystals from a mixed solution, Journal of the American Chemical Society, 2019, 141, 10007-10015.
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[29] Xinqian Zhang, Gang Wu*, Weifei Fu, Minchao Qin, Weitao Yang, Jielin Yan, Zhongqiang Zhang, Xinhui Lu* and Hongzheng Chen*, Orientation regulation of phenylethylammonium cation based 2D perovskite solar cell with efficiency higher than 11%, Advanced Energy Materials, 2018, 8, 1702498.
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[30] Jielin Yan, Weifei Fu, Xinqian Zhang, Jiehuan Chen, Weitao Yang, Weiming Qiu, Gang Wu*, Feng Liu*, Paul Heremans, and Hongzheng Chen*, Highly Oriented two-dimensional formamidinium lead iodide perovskite with a small bandgap of 1.51 eV, Materials Chemistry Frontiers, 2018, 2, 121-128.
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