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[1] Huang, L. S.; Lu, J. Z.; Ma, D. W.; Ma, C. M.; Zhang, B.;Wang, H. Y.; Wang, G. Y.; Gregory, D. H.; Zhou, X. Y.(*); Han, G.(*), Facile in situ solution synthesis of SnSe/rGO nanocomposites with enhanced thermoelectric performance†, J. Mater. Chem. A, 2020, 8, 1394~1402.
[2] Wang, H. Y.; Liu, X. F.; Zhang, B.; Huang, L. S.; Yang, M. L.; Zhang, X.; Zhang, H.; Wang, G. Y.; Zhou, X. Y.(*), Han, G.(*), General surfactant-free synthesis of binary silver chalcogenides with tuneable thermoelectric properties, J. Mater. Chem. A, 2020, 8, 1394.
[3] Li, N. H.; Zhu, H. X.; He, W. L.; Zhang, B.; Cui, W. J.; Hu, Z. Y.; Sang, X. H.; Lu, X.(*); Wang, G. Y.(*); Zhou, X. Y.(*), Realizing both n- and p-types of High Thermoelectric Performance in Fe1-xNixTiSb half-Heusler compounds, J. Mater. Chem. C, 2020, 8(9): 3156~3164.
[4] Wang. C.; Li. A.; Li. C.; Zhang. S. B.; Li. H.; Zhou, X. Y.(*); Hu. L. M.; Feng. Y. B.; Wang. K. W.; Zhu. Z.; Saho. R. W.; Chen. Y. H.; Gao. P.; Mao. S. C.; Huang. J.; Zhang. Z.; Han. X. D(*).; Ultrahigh Photocatalytic Rate at a Single-Metal-Atom-Oxide. Adv. Mater., 2019, 10.1002/adma.201903491.
[5] Zhu, H. X.; Zhang, B.; Wang, G. W.; Peng, K. L.; Yan, Y. C.; Zhang, Q.; Han, X. D.; Wang, G. Y.; Lu, X.(*); Zhou, X. Y.(*), Promoted high temperature carrier mobility and thermoelectric performance of InTe enabled by altering scattering mechanism, J. Mater. Chem. A, 2019, 7, 11690~11698.
[6] Yang, H. Q.; Wang, X. Y.; Wu, H.; Zhang, B.; Xie, D. D.; Chen, Y. J.; Lu, X; Han, X. D.; Miao, L.(*); Zhou, X. Y.(*), Sn Vacancy Engineering for Enhancing the Thermoelectric Performance of Two-Dimensional SnS. J. Mater. Chem. C, 2019, 7, 3351~3559.
[7] Shen, X. C.; Xia, Y.; Wang, G. W.; Zhou, F.; Lu, X. (*); Wang, G. Y.(*); Zhou, X. Y.(*), High thermoelectric performance in complexphosphides enabled by stereochemically activelone pair electrons†, J. Mater. Chem. A, 2018, 6, 24877~24884.
[8] Xie, D. D.; Zhang B.; Zhang A. J.; Chen Y. J.; Yan Y. C.; Yang H. Q.; WangG. W.; Wang G. Y.; Han X. D.; Han G.(*); Lu X.(*); Zhou X. Y. (*), High thermoelectric performance of Cu3SbSe4 nanocrystals with Cu2-xSe in situ inclusions synthesized by a microwave-assisted solvothermal method, Nanoscale, 2018, 10, (30): 14546~14553.
[9] Zhou, X. Y. (*); Yan, Y. C; Lu, X.; Zhu, H. T.; Han, X. D.; Chen, G.; Ren, Z. F.(*), Routes for High Performance Thermoelectric Materials, Material today, 2018, 21(9) 974~988.
[10] Wu, H.; Lu, X.; Wang, G. Y.; Peng, K. L.; Chi, H.; Zhang, B.; Chen, Y. J.; Li, C. J.; Yan, Y. C; Guo, L. J.; Uher, C.; Zhou, X. Y.(*); Han, X. D.(*), Na-doped SnS Single Crystal: A non-toxic Earth-abundant Material with High Thermoelectric Performance, Adv. Energy Mater, 2018, 1800087.
[11] Peng, K. L.; Zhang, B.; Wu, H.; Cao, X. L.; Li, A.; Yang, D. F.; Lu, X.; Wang,G. Y.; Han, X. D.; Uher, C.; Zhou, X. Y.(*), Ultra-High Average Figure of Merit in Synergistic Band Engineered SnxNa1-xSe0.9S0.1 Single Crystals, Material today, 2018, 21(5):501~507.
[12] Zhang, A. J.; Zhang, B.; Lu, W.; Xie, D. D.; Ou, H. X.; Han, X. D.; Dai, J. Y.; Lu, X.; Han, G.(*); Wang, G. Y.(*); Zhou, X. Y.(*), Twin Engineering in Solution-Synthesized Nonstoichiometric Cu5FeS4 Icosahedral Nanoparticles for Enhanced Thermoelectric Performance, Adv. Funct. Mater. 2018, 28, 1705117.
[13] Zhang, X.; Zhang, B.; Peng, K. L.; Shen, X. C.; Wu, G. T.; Yan, Y. C.; Luo, S. J.; Lu, X.; Wang, G. Y.; Gu, H. S.(*); Zhou, X. Y.(*), Spontaneously promoted carrier mobility and strengthened phonon scattering in p-type YbZn2Sb2 via a nanocompositing approach, Nano Energy, 2018, 43: 159~167.
[14] Tang, X. D.; Fang, D. D.; Peng, K. L.; Yang, D. F.; Guo, L. J. ; Lu, X.; Dai, J. Y.; Wang, G. Y.; Liu, H. J.(*); Zhou, X. Y.(*), Dopant Induced Impurity Bands and Carrier Concentration Control for Thermoelectric Enhancement in p-Type Cr2Ge2Te6, Chem. Mater., 2017, 29(17): 7401~7407.
[15] Yang, D. F.; Yao, W.; Yan, Y. C.; Qiu, W. J.; Guo, L. J.; Lu, X.; Uher, C.; Han, X. D.; Wang, G. Y.(*); Yang, T.(*); Zhou, X. Y.(*), Intrinsically low thermal conductivity from a quasi-one-dimensional crystal structure and enhanced electrical conductivity network via Pb doping in SbCrSe3, NPG Asia Materials, 2017, 9, e387.
[16] Peng, K. L.; Wu, H.; Yan, Y. C.; Guo, L. J.; Wang, G. Y.(*); Lu, X.(*); Zhou, X. Y.(*), Grain size optimization for high-performance polycrystalline SnSe thermoelectrics, J. Mater. Chem. A, 2017, 5(27): 14053~14060.
[17] Zhang, A. J.; Shen, X. C.; Zhang, Z.; Lu, X.; Yao, W.; Dai, J. Y.; Xie, D. D.; Guo, L. J.; Wang, G. Y.(*); Zhou, X. Y.(*), Large-scale colloidal synthesis of Cu5FeS4 compounds and their application in thermoelectrics, J. Mater. Chem. C, 2017, 5(2): 301~308.
[18] Yin, C.; Hu, Q.; Wang, G. Y.; Huang, T. Y.; Zhou, X. Y.(*); Zhang, X.; Dou, Y. W.; Kang, B.; Tang, J.; Liu, N.(*); Ang, R.(*), Intriguing substitution of conducting layer triggered enhancement of thermoelectric performance in misfit-layered (SnS)1.2(TiS2)2, Appl. Phys. Lett., 2017, 110(4): 043507.
[19] Yang, D. F.; Yao, W.; Chen, Q. F.; Peng, K. L.; Jiang, P. F.; Lu, X.; Uher, C.; Yang, T.(*); Wang, G. Y.(*); Zhou, X. Y.(*), Cr2Ge2Te6: High Thermoelectric Performance from Layered Structure with High Symmetry, Chem. Mater., 2016, 28(6): 1611~1615.
[20] Peng, K. L.; Lu, X.; Zhan, H.; Hui, S.; Tang, X. D.; Wang, G. W.; Dai, J. Y.; Uher, C.; Wang, G. Y.(*); Zhou, X. Y.(*), Broad temperature plateau for high ZTs in heavily doped p-type SnSe single crystals, Energy Environ. Sci., 2016, 9(2): 454~460.