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个人简介

教育背景 2009年 美国芝加哥大学 化学 博士 2005年 美国芝加哥大学 化学 硕士 2003年 南京大学 化学 学士 工作经历 2018年11月-至今 南方科技大学材料科学与工程系 教授,(全职) 2012年09月-2018年11月 南方科技大学材料科学与工程系 副教授,(全职) 2009年10月-2012年08月 美国斯坦福大学化学系 博士后研究员

研究领域

研究以分子工程为核心,基于分子原理开发先进功能材料。 1. 电化学转换系统:基于分子与纳米结构调控发展非贵金属电催化剂,实现高效、快速与稳定的能量转换, 推动电化学能源系统的广泛应用 2. 分子染料:近红外二区荧光有机分子的结构设计、合成及结构-性能关系研究,开发长波长发射并具有高亮度的近红外二区荧光分子,应用于生物成像、检测与传感 3. 有机电子材料: 基于分子设计、化学合成以及器件工艺,发展高效太阳能电池材以及发展高灵敏度、快速响应的有机光电探测器与新的应用

近期论文

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Wang, W.; Li, X.; Li, M. F.; Zhong, W. T.; Yuan, Y. B.; Lin, Z. C.; Zhu, Y.; Zhu, S. J.;* Yang, T. B.;* and Liang, Y. Y.;*"Indole Carbonized Polymer Dots Doped into N‑Oxide Functionalized Perylene-Diimide as an Electron Transport Layer for Organic Solar Cells"ACS Appl. Nano Mater. 2024. Wang, W.;# Zhong, W. T.;# Li, Z. N.; Li, X.; Tang, Y. R.; Yang, X. Q.; Wang, X. Y.;Zhu, Y.; Zhang, X.; He, Z.B.;* Tingbin Yang,* and Yongye Liang*"A Low-Temperature Solution-Processed Nickel Oxide Nanoparticles and Phosphotungstic Acid Composite as an Anode Interface Layer for Organic Solar Cells"ACS Appl. Energy Mater.2024, 7, 5120−5126. Sun, B.; Ma, R.; Wang, X.; Ma, S. J.; Li, W. Z.; Liu, T. Y.; Zhu, W. H.; Ji, Z. C.; Hettie, K. S.; Liu, C. C.; Liang, Y. Y.; Zhu, S. J.;*"A high-performance cell-labeling NIR-II dye for in vivo cell tracking"VIEW. 2024,20230097. Wang, F. F.; Zhong, Y. T.; Bruns, O.; Liang, Y. Y.; *& Dai , H. J.;*"In vivo NIR-II fluorescence imaging for biology and medicine"Nature Photonics.2024,Volume18, 535–547. Li, H.; Jiang, Z.; Yuan, Y. B.; Tang, Y. R.; Zao, J.; Zhang, W. T.; Han, P. Y.; Zhang, X.; Chen, B. L.;and Liang, Y. Y.;*"Multiscale engineering of molecular electrocatalysts for the rapid hydrogen evolution reaction"Nano Res. 2024. Wang, Y. J.; Zhou, D.; Ma, H. L.; Liu, D. H.; Liang, Y. Y.; Zhu, S. J.;"An ultra‑small organic dye nanocluster for enhancing NIR‑II imaging‑guided surgery outcomes"European Journal of Nuclear Medicine and Molecular Imaging. 2024. Cao, W. K.; Zhang, X.; Yang, X. Q.; Sun, H. T.;* Chen, Z. X.;* and Liang, Y. Y.*"Quinoidal π‑Bridges for a Fused-Ring Acceptor with Enhanced Near-Infrared-IIPhotothermal Therapy and Fluorescent Emission beyond 1500 nm"ACS Materials Lett. 2024, 6, 2687−2695. Wang, X. Y.;+ Yang, X. Q.;+ Jiang, G. Y.; Hu, Z. B.; Liao, T.; Wang, G. X.; Zhang, X.; He, X. Y.; Zhang, J. Y.; Zhang, J. Q.; Cao, W. K.; Zhang, K. Z.; Lam, Jacky W. Y.; Sun, J. W.;* Sun, H. T.;* Liang, Y. Y.;* and Tang, B. Z.;*"Unlocking the NIR-II AIEgen for High Brightness through Intramolecular Electrostatic Locking"Angew. Chem. Int. Ed. 2024, e202404142 (1 of 12). Feng, S. J.;+ Wang, X. J.;+ Cheng, D. F.;+ Luo, Y.;+ Shen, M. X.; Wang, J. Y.; Zhao, W.; Fang, S. S; Zheng, H. Z.; Ji, L.Y.; Zhang, X.; Xu, W. G.; Liang, Y. Y.; Sautet, P.; and Zhu, J.;*"Stabilizing *CO2 Intermediates at the Acidic Interface using Molecularly Dispersed Cobalt Phthalocyanine as Catalysts for CO2 Reduction"Angew. Chem. Int. Ed. 2024, 136, e202317942 (1 of 9). Yang, X. Q.; Wang, X. Y.; Zhang, X.; Zhang, J. Y.; Lam, Jacky W. Y.; Sun, H. T.; Yang, J. L.;* Liang, Y. Y.;* and Ben Zhong Tang*"Donor–Acceptor Modulating of Ionic AIE Photosensitizers for Enhanced ROS Generation and NIR-II Emission"Adv. Mater. 2024, 2402182. Li, X.; Wang, W.; Zhong, W. T.; Tang, Y. R.; Wang, X. Y.; Li, H.; Yang, T. B.;*and Liang. Y. Y.;*"Amine-Functionalized Carbon Dots as PEDOT:PSS Dopants for Organic Solar Cells"Adv. Mater. Interfaces 2023, 10, 2300502. Zheng, H. Z.; Li, H.; Zhang, Z. S.; Wang, X. J.; Jiang, Z.; Tang, Y. R.; Zhang, J. B.; Emley, B. J.; Zhang, Y.; Zhou, H.; Yao, Y.;* and Liang, Y. Y.;*"Dispersed Nickel Phthalocyanine Molecules on Carbon Nanotubes as Cathode Catalysts for Li-CO2 Batteries"Small 2023, 19, 2302768. Gao, D. Y.; Luo, Z. C.; He, Y.; Yang, L. X.; Hu, D. H.; Liang, Y. Y.; Zheng, H. R.*; Liu, X. G.*; and Sheng, Z. H.*;“Low-Dose NIR-II Preclinical Bioimaging Using Liposome-Encapsulated Cyanine Dyes”Small 2023, 2206544. Liu, C. C.; Li, M. F.; Ma, H. L.; Hu, Z. B.;Wang, X. Y.; Ma, R.; Jiang, Y. Y.; Sun, H.T.*; Zhu, S. J.*; and Liang, Y. Y.*; “Furan Donor for NIR-II Molecular Fluorophores with Enhanced Bioimaging Performance”Research.2023. Jiang, G. Y.; Hu, Z. B.; Bai, L.; Zhong, C.; Lu, S.; Han, B. S.; Sun, Z. R.; Zhu, S. J.; Liang, Y. Y.; and Sun, H. T.*; “Origins of near-infrared-II emission tail and fluorescence enhancement of albumin-chaperoned cyanine dyes from a multiscale computational study”J. Mater. Chem. C.2023. Liu, C. C.; Wang, W. Y.; Zhu, X. F.; Ma, R.; Lin, Q. H.*;and Liang, Y. Y.*; “3,4-Ethylenedithio thiophene donor for NIR-II fluorophores with improved quantum yields”Mater. Chem. Front.2023, 7, 2419–2425. Wang, W.; Lin, Z. C.; Li, X.; Tang, Y. R.; Zhong, W. T.; Zhang, C. H.; Yang,T. B.*; and Liang, Y. Y.*; “Zinc acetylacetonate doping for enhanced cathode interface layer in organic solar cells”Mater. Chem. Front., 2023, 7, 287–293 | 287. Jiang, Z.; Wang, Y. M.; Lin, Z. C.; Yuan, Y. B.; Zhang, X.; Tang, Y. R.; Wang, H. X.; Li, H.; Jin, C. Y.; and Liang, Y. Y.*;“Molecular electrocatalysts for rapid and selective reduction of nitrogenous waste to ammonia”Energy Environ. Sci., 2023, 16, 2239–2246 | 2239. Yang, X. Q.; Xu, C. H.; Zhang, X.; Li, P.; Sun, F. Y.; Liu, X. Y.; Wang, X. Y.;Ryan T. K. Kwok, Yang, J. L.;* Jacky W. Y. Lam,* Liang, Y. Y.;and Tang, B. Z.;*“Development of Sulfonamide-Functionalized Charge-Reversal AIE Photosensitizers for Precise Photodynamic Therapy in the Acidic Tumor Microenvironment”Adv. Funct. Mater. 2023, 2300746. Wang, Y. J.; Nan, J. J.; Ma,H. L.; Xu, J. J.; Guo, F. F.; Wang, Y. F.; Liang, Y. Y.*; Zhang, J. H.*; and Zhu, S. J.*; “NIR-II Imaging and Sandwiched Plasmonic Biosensor for Ultrasensitive Intraoperative Definition of Tumor-Invaded Lymph Nodes”Nano Lett. 2023, 23, 4039−4048. Li, L.; Jiang, Z.; Li, Y. Y.; Li, F. Y.; Pan, Y. Y.; Zhang, X. Y.* ; Liang, Y. Y.*; and Zheng, Z. P.*; “Regulating Morphological Features of Nickel Single-Atom Catalysts for Selective and Enhanced Electroreduction of CO2”Small Methods 2023, 7, 2201213. Jiang, Z.; Zhang, Z. S.; Li, H.; Tang, Y. R.; Yuan, Y. B.; Zao, J.; Zheng, H. Z.;and Liang, Y. Y.*; “Molecular Catalyst with Near 100% Selectivity for CO2 Reduction in Acidic Electrolytes”Adv. Energy Mater. 2022, 2203603. Hu, R. B.; Yang, Y.; Liu, Y.; Liao, T.; Liu, Y. Y.; Tang, J. H.; Wang, G. H.; Wang, G. X.; Liang, Y. Y.*; Yuan, J.*; and Zhang, B.*; “Multiplexed evaluation of immunity against SARS-CoV-2 variants using surface enhanced fluorescence from a nanostructured plasmonic chip”Journal of Nanobiotechnology (2022) 20:533. Yuan, Y. B.; Li, H.; Jiang, Z.;Lin, Z. C.;Tang, Y. R.; Wang, H. X.; and Liang, Y. Y.*; “Deciphering the selectivity descriptors of heterogeneous metal phthalocyanine electrocatalysts for hydrogen peroxide production”Chem. Sci., 2022, 13, 11260–11265. Weng, Z.; Wu, Y. S.; Wang, M. Y.; Brudvig, G. W.; Batista, V. S.; Liang, Y. Y.*; Feng, Z. X.*;Wang, H. L.*;“Reply To: Confined molecular catalysts provide an alternative interpretation to the electrochemically reversible demetallation of copper complexes”Nature Communications, https://doi.org/10.1038/s41467-022-31661-1 (2022). Hu, R. B.; L, T.; Ren, Y.; Liu, W. M.; Ma, R.; Wang, X. Y.; Lin, Q. H. *; Wang, G. X. *; Liang, Y. Y.*; “Sensitively detecting antigen of SARS-CoV-2 by NIR-II fluorescent nanoparticles”Nano Res .2022,15(8):7313-7319. Wang, W.; Lin, Z. C.; Li, X.; Zhang, C. H.; Yang, T. B.*; Liang, Y. Y.*; “Combining ZnO and PDINO as a Thick Cathode Interface Layer for Polymer Solar Cells”ACS Appl.Mater. Interfaces 2022,14,18736-18743. Yang, Q. L.*; Ma, H. L.;Liang, Y. Y.*; Dai, H. J.*; “Rational Design of High Brightness NIR-II Organic Dyes with S-D-A-D-S Structure” Acc. Mater.Res.2021,2,170-183. Tao, Z. X.;Rooney,C. L.; Liang, Y. Y.*; Wang, H. L.*; “Accessing Organonitrogen Compounds via C-N Coupling in Electrocatalytic CO2Reduction” J.Am.Chem Soc.2021, 143, 19630-19642. Liu, L. Z.; Chen, S. Y.; Qu, Y. Y.; Gao, X. ;Han, L.; Lin, Z. W.; Yang,L. L.; Wang, W.; Zheng,N.; Liang, Y. Y.; Tan, Y. Z.*; Xia, H. P.*; He, F.*;“Nanographene–Osmapentalyne Complexes as a Cathode Interlayer in Organic Solar Cells Enhance Efficiency over 18%” Advanced Materials. 2021,33,2101279. Liu, C. C.*; Ma, H. L.; Hu, Z.B.; Tian , R.;Ma, R.; Xu , Y. F.;Wang, X. Y.; Zhu, X. F.;Yu, P. P.;Zhu, S. J.*;Sun , H. T.*; and Liang, Y. Y.*; “Shielding Unit Engineering of NIR-II Molecular Fluorophores for Improved Fluorescence Performance and Renal Excretion Ability”Frontiers in Chemistry .2021.739802. Lin, Z. C.; Jiang, Z.;Yuan, Y. B.; Li, H.; Wang, H. X.;Tang, Y. R.;Liu, C. C.;Liang , Y. Y.*;“Cobalt‐N4 macrocyclic complexes for heterogeneous electrocatalysis of the CO2 reduction reaction”Chinese Journal of Catalysis 42 (2021) 0–0.(Front Cover). Wu, Y. S.; Liang, Y. Y.; Wang, H. L.*; “Heterogeneous Molecular Catalysts of Metal Phthalocyanines for Electrochemical CO2 Reduction Reactions” Acc. Chem Res. 2021. Wang, Y.;Zhang, Z. S.; Zhang, X.*; Yuan, Y. B, ;Jiang, Z,; Zheng, H. Z.; Wang, Y. G.; Zhou, H,; & Liang, Y. Y.*;“Theory-Driven Design of Electrocatalysts for the Two-Electron Oxygen Reduction Reaction Based on Dispersed Metal Phthalocyanines ”CCS Chem. 2021, 3, 585–593. Zhang, X.#; Li, J, C.#; Li, Y. Y.; Jung, Y, H.; Kuang, Y.; Zhu, G. Z.; Liang, Y. Y.*;and Dai, H, J.*;“Selective and High Current CO2 Electro-Reduction to Multicarbon Products in Near-Neutral KCl Electrolytes”J. Am. Chem. Soc. 2021, 143, 3245−3255. Wu, Y. S.#;Jiang, Z.#;Lin, Z. C.#;Liang, Y. Y.*;Wang, H. L.*;“Direct electrosynthesis of methylamine from carbon dioxide and nitrate”Nat Sustain. 2021. https://doi.org/10.1038/s41893-021-00705-7. Ma, R. M.#; Ren, Z. W.#; Li, C.#; Wang, Y.#; Huang, Z. F.#; Zhao, Y.#; Yang, T. B.; Liang, Y. Y.; Sun, X. W.; Choy, W. C. H.*; “Establishing Multifunctional Interface Layer of Perovskite Ligand Modified Lead Sulfide Quantum Dots for Improving the Performance and Stability of Perovskite Solar Cells” Small 2020, 16, 2002628. Wang. Y.#; Jiang. Z.#; Zhang. X.#; Niu. Z. Y.#; Zhou. Q. Q.#; Wang. X. J.#; Li. H.#; Lin. Z. C.#; Zheng. H. Z.*#; Liang, Y. Y.*# “Metal Phthalocyanine-Derived Single-Atom Catalysts for Selective CO2 Electroreduction under High Current Densities” ACS Appl. Mater. Interfaces 2020, 12, 30, 33795–33802. Zhang, X.#; Wang, Y.#; Gu, M.#; Wang. M. Y.#; Zhang, Z. S.; Pan, W. Y.; Jiang, Z.; Zheng, H. Z.; Lucero, M.; Wang, H. L.; Sterbinsky, G. E.; Ma, Q.; Wang, Y.G.*; Feng, Z. X.*; Li, J.; Dai, H. J.; Liang, Y. Y.* “Molecular engineering of dispersed nickel phthalocyanines on carbon nanotubes for selective CO2 reduction” Nat. Energy. 2020, 5, 684–692. Zhang, C. -H. #; Lin, F. Y.#; Huang, W.#; Xin, J. M. #; Wang, J.; Lin, Z. C.; Ma, W. *; Yang, T. B. *; Xia, J. B.; Liang, Y. Y.*"Methyl Functionalization on Conjugated Side Chains for Polymer Solar Cells Processed from Non-chlorinated Solvents"J. Mater. Chem. C,2020,https://doi.org/10.1039/D0TC02032J. Zhu, X. F. #; Liu, C. C.#; Hu, Z. B.#; Liu, H. L.#; Wang, J.; Wang, Y.; Wang, X. Y.; Ma, R.; Zhang, X. D.*; Sun, H. T.*; Liang, Y. Y.* “High brightness NIR-II nanofluorophores based on fused-ring acceptor molecules” Nano Res. 2020, DOI: 10.1007/s12274-020-2901-y. Xiao, F; Lin, L; Chao, Z. C.; Shao, C.; Chen, Z.; Wei, Z. X.; Lu, J. X.; Huang, Y. S.; Li, L. Q.; Liu, Q.; Liang, Y. Y.; Tian, L. L.* “Organic Spherical Nucleic Acids for the Transport of a NIR-II-Emitting Dye Across the Blood-Brain Barrier” Angew. Chem. Int. Ed. 2020, 59, 9702-9710. Ma, H. L.; Liu, C. C.; Hu, Z. B.; Yu, P. P.; Zhu, X. F.; Ma, R. ; Sun, Z. R.; Zhang, C. H.; Sun, H. T.*; Zhu, S. J.*; Liang, Y. Y.* “Propylenedioxy Thiophene Donor to Achieve NIR-II Molecular Fluorophores with Enhanced Brightness” Chem. Mater. 2020, 32, 2061-2069. Tian, R.; Ma, H.; Zhu, S. J.*; Lau, J.;Ma, R.; Liu, Y.; Lin, L.; Chandra, S.; Wang, S.; Zhu, X.; Deng, H.; Niu, G.; Zhang, M. X.*; Antaris, A.L.; Hettie, K.S.; Yang, B.; Liang, Y. Y.*; Chen. X.* “Multiplexed NIR-II Probes for Lymph Node-Invaded Cancer Detection and Imaging-Guided Surgery” Adv. Mater. 2020, 32, 1907365. Li, C.; Ma, R. M.; He, X. J.; Yang, T. B.; Zhou, Z. M.; Yang, S.; Liang, Y. Y.; Sun, X. W.; Wang, J. N.; Yan, Y. F.; Choy, W. C. H.*, “In Situ Tin(II) Complex Antisolvent Process Featuring Simultaneous Quasi-Core-Shell Structure and Heterojunction for Improving Efficiency and Stability of Low-Bandgap Perovskite Solar Cells” Adv. Energy Mater. 2020, 10, 1903013.

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