Energy and Optoelectronic Devices Lab
能源與光電元件實驗室
SCI Publications

































1 / Repairing Interfacial Defects in Self-Assembled Monolayers for High-Efficiency Perovskite Solar Cells and Organic Photovoltaics through the SAM@Pseudo-Planar Monolayer Strategy
Chieh-Ming Hung, Chi-Chi Wu, Yu-Hsuan Yang, Bo-Han Chen, Chih-Hsuan Lu, Che-Chun Chu, Chun-Hao Cheng, Chun-Yun Yang, Yan-Ding Lin, Ching-Hsuan Cheng, Jiann-Yeu Chen, I-Chih Ni, Chih-I Wu, Shang-Da Yang, Hsieh-Chih Chen*, and Pi-Tai Chou* Advanced Science 2024, 11, 2404725. (SCI, IF: 14.3)
2 / Self-assembled monolayers of bi-functionalized porphyrins: a novel class of hole-layer-coordinating perovskites and indium tin oxide in inverted solar cells
Chieh-Ming Hung, Chi-Lun Mai, Chi-Chi Wu, Bo-Han Chen, Chih-Hsuan Lu, Che-Chun Chu, Meng-Chuan Wang, Shang-Da Yang, Hsieh-Chih Chen*, Chen-Yu Yeh*, and Pi-Tai Chou* Angewandte Chemie International Edition 2023, 62, e202309831. (SCI, IF: 16.6)
3 / Functionalization of donor–π–acceptor hole transport materials enhances crystallization and defect passivation in inverted perovskite solar cells: achieving power conversion efficiency >21% (area: 1.96 cm2) and impressive stability
Chieh-Ming Hung, Chi-Chi Wu, Po-Hsiung Tsao, Chia-Di Lung, Chih-Hsing Wang, I-Chih Ni, Che-Chun Chu, Chun-Hao Cheng, Wen-Yang Kuang, Chih-I Wu, Hsieh-Chih Chen*, Yi-Tsu Chan*, and Pi-Tai Chou* Advanced Energy and Sustainability Research 2023, 4, 2300042. (SCI, IF: 6.6)
4 / Columnar liquid-crystalline triazine-based dendrimer with carbon nanotube filler for efficient organic lithium-ion batteries
Febri Baskoro, Pin-Chieh Chiang, Yao-Chih Lu, Jonathan N Patricio, Susan D Arco, Hsieh-Chih Chen, Wen-Shyong Kuo, Long-Li Lai*, and Hung-Ju Yen* Electrochimica Acta 2022, 434, 141306. (SCI, IF: 6.6)
5 / Metal−Organic Framework-Assisted Synthesis of Three-Dimensional ZnCoS Effloresced Nanopillars@CNT Paper for High-Performance Flexible All-Solid-State Battery-Type Supercapacitors with Ultrahigh Specific Capacitance
Hsieh-Chih Chen*, Liang-Yu Hou, Chuyue He, Pei-Jung Laing, Ching-Yung Huang, and Wen-Shyong Kuo ACS Applied Energy Materials 2022, 5, 8262–8272. (SCI, IF: 6.4)
6 / Modulation of Perovskites Grain Boundaries by Electron Donor-Acceptor Zwitterions R,R-Diphenylamino-phenyl-pyridinium-(CH2)n-sulfonates: All-round Improvement on the Solar Cell Performance
Chieh-Ming Hung, Jin-Tai Lin, Yu-Hsuan Yang, Yi-Chun Liu, Mong-Wen Gu, Tai-Che Chou, Sheng-Fu Wang, Zi-Qin Chen, Chi-Chi Wu, Li-Cyun Chen, Cheng-Chih Hsu, Chun-hsien Chen, Ching-Wen Chiu, Hsieh-Chih Chen*, and Pi-Tai Chou* JACS Au 2022, 2, 1189−1199. (SCI, IF: 8.0)
7 / Synergistic engineering of natural carnitine molecules allowing for efficient and stable inverted perovskite solar cells
Hsieh-Chih Chen*, Chieh-Ming Hung, and Chun-Hong Kuo ACS Applied Materials & Interfaces 2021, 13, 8595-8605. (SCI, IF: 9.5)
8 / All-porphyrin photovoltaics with power conversion efficiency of 7.2%
Yun-Ju Chiang, Yi-Hsuan Hsiao, Yu-Hsuan Chen, Chieh-Ming Hung, Hsieh-Chih Chen*, and Chen-Yu Yeh* ACS Energy Letters 2020, 5, 2641-2650. (SCI, IF: 22.0) (Selected as the supplementary cover)
9 / Design of new n-type porphyrin acceptors with subtle side-chain engineering for efficient nonfullerene solar cells with low energy loss and optoelectronic response covering the near-infrared region
Ming-Chi Tsai, Chieh-Ming Hung, Zi-Qin Chen, Yi-Chieh Chiu, Hsieh-Chih Chen*, and Ching-Yao Lin* ACS Applied Materials & Interfaces 2019, 11, 45991-45998. (SCI, IF: 9.5) (Selected as the front cover)
10 / Synthesis and characterization of new asymmetric thieno[3,4-b]pyrazine-based D−π−A−A type small molecular donors with near-infrared absorption and their photovoltaic applications
Shu-Hua Chou, Hsieh-Chih Chen*, Chun-Kai Wang, Chin-Lung Chung, Chieh-Ming Hung, Jung-Chun Hsu, and Ken-Tsung Wong* Organic Electronics 2019, 68, 159-167. (SCI, IF: 3.2)
11 / Facile fabrication of three-dimensional hierarchical nanoarchitectures of VO2/graphene@NiS2 hybrid aerogel for high-performance all-solid-state asymmetric supercapacitors with ultrahigh energy density
Hsieh-Chih Chen*, Yi-Cih Lin, Yan-Lin Chen, and Chi-Jen Chen ACS Applied Energy Materials 2019, 2, 459-467. (SCI, IF: 6.4)
12 / S,N-Heteroacene-Based Copolymers for Highly Efficient Organic Field Effect Transistors and Organic Solar Cells: Critical Impact of Aromatic Subunits in Ladder π-System
Chin-Lung Chung, Hsieh-Chih Chen*, Yun-Siou Yang, Wei-Yao Tung, Jian-Wei Chen, Wen-Chang Chen, Chun-Guey Wu, and Ken-Tsung Wong* ACS Applied Materials & Interfaces 2018, 10, 6471-6483. (SCI, IF: 9.5)
13 / Comprehensive study of pyrido[3,4-b]pyrazine-based D−π-A copolymer for efficient polymer solar cells
Yu-Qi Wu, Hsieh-Chih Chen*, Yun-Siou Yang, Sheng Hsiung Chang, Pin-Jiun Wu, Yen-Yi Chu, and Chun-Guey Wu* Journal of Polymer Science Part A: Polymer Chemistry 2016, 54, 1822-1833. (SCI, IF: 2.9)
14 / Interplay of molecular orientation, film formation, and optoelectronic properties on isoindigo- and thienoisoindigo-based copolymers for organic field effect transistor and organic photovoltaic applications
Chien Lu, Hsieh-Chih Chen*, Wei-Ti Chuang, Yen-Hao Hsu, Wen-Chang Chen*, and Pi-Tai Chou* Chemistry of Materials 2015, 27, 6837-6847. (SCI, IF: 8.6)
15 / A silole copolymer containing a ladder-type heptacylic arene and naphthobisoxadiazole moieties for highly efficient polymer solar cells
Zhiyun Zhang, Francis Lin, Hsieh-Chih Chen*, Hung-Chin Wu, Chin-Lung Chung, Chien Lu, Shih-Hung Liu, Shih-Huang Tung, Wen-Chang Chen, Ken-Tsung Wong*, and Pi-Tai Chou* Energy & Environmental Science 2015, 8, 552-556. (SCI, IF: 32.5)
16 / Shape-dependent light harvesting of 3-D gold nanocrystals on bulk heterojunction solar cells: plasmonic or optical scattering effect?
Wei-Hsuan Tseng, Chun-Ya Chiu, Shang-Wei Chou, Hsieh-Chih Chen, Meng-Lin Tsai, Ya-Ching Kuo, Der-Hsien Lien, Yu-Chi Tsao, Kuo-You Huang, Chih-Ting Yeh, Jr-Hau He, Chih-I Wu*, Michael H. Huang*, and Pi-Tai Chou* Journal of Physical Chemistry C 2015, 119, 7554-7564. (SCI, IF: 3.7)
17 / A strategic design of 3D urchin-like Pt-Ni nanoalloys: how this unique nanostructure boosts the bulk heterojunction polymer solar cells efficiency to 8.48%
Shang-Wei Chou, Hsieh-Chih Chen*, Zhiyun Zhang, Wei-Hsuan Tseng, Chih-I Wu, Ya-Yun Yang, Ching-Yen Lin, and Pi-Tai Chou* Chemistry of Materials 2014, 26, 7029-7038. (SCI, IF: 8.6)
18 / Comprehensive study of medium-bandgap conjugated polymer merging a fluorinated quinoxaline with branched side chains for high-efficient and air-stable polymer solar cells
Wei-Hsuan Tseng, Hsieh-Chih Chen*, Yun-Chen Chien, Chi-Chang Liu, Yung-Kang Peng, Yu-Sin Wu, Jung-Hung Chang, Shih-Hung Liu, Shang-Wei Chou, Chien-Liang Liu, Ying-Hsiao Chen, Chih-I. Wu*, and Pi-Tai Chou* Journal of Materials Chemistry A 2014, 2, 20203-20212. (SCI, IF: 11.9)
19 / One-step, room-temperature synthesis of glutathione-capped iron-oxide nanoparticles and their application in in vivo T1-weighted magnetic resonance imaging
Chien-Liang Liu, Yung-Kang Peng, Shang-Wei Chou, Wei-Hsuan Tseng, Yu-Jui Tseng, Hsieh-Chih Chen, Jong-Kai Hsiao*, and Pi-Tai Chou* Small 2014, 10, 3962-3969. (SCI, IF: 13.3)
20 / Uniform size and composition tuning of PtNi octahedra for systematic studies of oxygen reduction reactions
Shang-Wei Chou, Ying-Ren Lai, Ya Yun Yang, Chih-Yuan Tang, Michitoshi Hayashi, Hsieh-Chih Chen, Hui-Lung Chen*, and Pi-Tai Chou* Journal of Catalysis 2014, 309, 343-350. (SCI, IF: 7.3)
21 / Fluorinated thienyl-quinoxaline-based D−π−A−type copolymer toward efficient polymer solar cells: synthesis, characterization, and photovoltaic properties
Hsieh-Chih Chen*, Ying-Hsiao Chen, Chung-Hao Liu, Yen-Hao Hsu, Yun-Chen Chien, Wei-Ti Chuang, Chih-Yang Cheng, Chien-Liang Liu, Shang-Wei Chou, Shih-Huang Tung*, and Pi-Tai Chou* Polymer Chemistry 2013, 4, 3411-3418. (SCI, IF: 4.6)
22 / Antiferromagnetic iron nanocolloids: a new generation in vivo T1 MRI contrast agent
Yung-Kang Peng, Chien-Liang Liu, Hsieh-Chih Chen, Shang-Wei Chou, Wei-Hsuan Tseng, Yu-Jui Tseng, Chia-Cheng Kang, Jong-Kai Hsiao*, and Pi-Tai Chou* Journal of the American Chemical Society 2013, 135, 18621-18628. (SCI, IF: 15.0)
23 / In vivo metabolic imaging of insulin with multiphoton fluorescence of human insulin-Au nanodots
Chien-Liang Liu, Tzu-Ming Liu*, Tsung-Yuan Hsieh, Han-Wen Liu, Yu-Shing Chen, Cheng-Kun Tsai, Hsieh-Chih Chen, Jong-Wei Lin, Ron-Bin Hsu, Tzung-Dau Wang, Chien-Cheng Chen, Chi-Kuang Sun, and Pi-Tai Chou* Small 2013, 9, 2103-2110. (SCI, IF: 13.3)
24 / Prominent short-circuit currents of fluorinated quinoxaline-based copolymer solar cells with a power conversion efficiency of 8.0%
Hsieh-Chih Chen*, Ying-Hsiao Chen, Chi-Chang Liu, Yun-Chen Chien, Shang-Wei Chou, and Pi-Tai Chou* Chemistry of Materials 2012, 24, 4766-4772. (SCI, IF: 8.6)
25 / Large AuAg alloy nanoparticles synthesized in organic media using a one-pot reaction: their applications for high-performance bulk heterojunction solar cells
Hsieh-Chih Chen, Shang-Wei Chou, Wei-Hsuan Tseng, I-Wen P. Chen, Chi-Chang Liu, Chun Liu, Chien-Liang Liu, Chun-hsien Chen*, Chih-I. Wu*, and Pi-Tai Chou* Advanced Functional Materials 2012, 22, 3975-3984. (SCI, IF: 19.0)
26 / Enhanced performance and air stability of 3.2% hybrid solar cells: how the functional polymer and CdTe nanostructure boost the solar cell efficiency
Hsieh-Chih Chen, Chih-Wei Lai, I-Che Wu, Hsin-Ru Pan, I-Wen P. Chen, Yung-Kang Peng, Chien-Liang Liu, Chun-hsien Chen, and Pi-Tai Chou* Advanced Materials 2011, 23, 5451-5455. (SCI, IF: 29.4)
27 / Superiority of branched side chains in spontaneous nanowire formation: exemplified by poly(3-2-methylbutylthiophene) for high-performance solar cells
Hsieh-Chih Chen, I-Che Wu, Jui-Hsiang Hung, Fu-Je Chen, I-Wen P. Chen, Yung-Kang Peng, Chao-Sung Lin, Chun-hsien Chen, Yu-Jane Sheng, Heng-Kwong Tsao*, and Pi-Tai Chou* Small 2011, 7, 1098-1107. (SCI, IF: 13.3)
28 / A new and facile method to prepare uniform hollow MnO/functionalized mSiO2 core/shell nanocomposites
Yung-Kang Peng, Chih-Wei Lai, Chien-Liang Liu, Hsieh-Chih Chen, Yi-Hsuan Hsiao, Wei-Liang Liu, Kuo-Chun Tang, Yun Chi, Jong-Kai Hsiao*, Kun-Eng Lim, Hung-En Liao, Jing-Jong Shyue, and Pi-Tai Chou* ACS Nano 2011, 5, 4177-4187. (SCI, IF: 17.1)
29 / Design and synthesis of trithiophene-bound excited-state intramolecular proton transfer dye: enhancement on the performance of bulk heterojunction solar cells
Dong-Yi Chen, Chyi-Lin Chen, Yi-Ming Cheng, Cheng-Hsuan Lai, Jian-Yuan Yu, Bo-So Chen, Cheng-Chih Hsieh, Hsieh-Chih Chen, Li-Yin Chen, Ching-Yen Wei, Chung-Chih Wu, and Pi-Tai Chou* ACS Applied Materials & Interfaces 2010, 2, 1621-1629. (SCI, IF: 9.5)
30 / Organic dyes with remarkably high absorptivity; all solid-state dye sensitized solar cell and role of fluorine substitution
Dong-Yi Chen, Yu-Yen Hsu, Hui-Chu Hsu, Bo-So Chen, Yi-Tsung Lee, Hungshin Fu, Min-Wen Chung, Shih-Hung Liu, Hsieh-Chih Chen, Yun Chi*, and Pi-Tai Chou* Chemical Communications 2010, 46, 5256-5258. (SCI, IF: 6.2)
31 / Morphology and photophysical properties of DB-PPV/PMMA luminescent electrospun fibers
Hsieh-Chih Chen, Cheng-Liang Liu, Chi-Chung Bai, Nian-Hau Wang, Chih-Shan Tuan and Wen-Chang Chen* Macromolecular Chemistry and Physics 2009, 210, 918-925. (SCI, IF: 2.5)
32 / Non-woven and aligned electrospun multicomponent luminescent polymer nanofibers: effects of aggregated morphology on the photophysical properties
Cheng-Ting Wang, Chi-Ching Kuo, Hsieh-Chih Chen, and Wen-Chang Chen* Nanotechnology 2009, 20, 375604. (SCI, IF: 3.5)
33 / Full color light-emitting electrospun nanofibers prepared from PFO/MEH-PPV/PMMA ternary blends
Hsieh-Chih Chen, Cheng-Ting Wang, Cheng-Liang Liu, Yu-Cheng Liu, and Wen-Chang Chen* Journal of Polymer Science Part B: Polymer Physics 2009, 47, 463-470. (SCI, IF: 3.2)