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2018年-研究论文


025、窦尚轶, 卫东, 蒋皓然, et al. NMP溶剂退火制备高效钙钛矿太阳电池[J]. 中国测试,  2018(12). ||PDF                   

024、梅文明, 李美成, 许傲然, et al. 飞跨电容逆变器漏电流控制在光伏并网中的研究[J]. 科技通报,  2018(10).||PDF                    

023、Bi Luo, Bing Jiang, Peng Peng, et al.Improving the electrochemical performance of LiNi1/3Co1/3Mn1/3O2 cathode material via tungsten modification[J]. Electrochimica Acta,  2019, 297: 398-405.||PDF                        

022、Sajid Sajid, Ahmed Mourtada Elseman, Dong Wei, Jun Ji, et al. NiO@carbon spheres: A promising composite electrode for scalable fabrication of planar perovskite solar cells at low cost[J]. Nano Energy, 2019, 55: 470-476.||PDF                    

021、Xiaodan Li, Wendi Zhang, Yi Feng, Wei Li, Peng Peng, et al. Ultrafine CoSe nano-crystallites confined in leaf-like N-doped carbon for long-cyclic and fast sodium ion storage[J]. Electrochimica Acta, 2019, 294: 173-182.||PDF                      

020、Bing Jiang, Bi Luo, Jingru Li, Peng Peng, et al. Electrochemical effect of graphite fluoride modification on Li-rich cathode material in lithium ion battery[J]. Ceramics International, 2019, 45(1): 160-167. ||PDF                       

019、Elseman A M, Sharmoukh W, Sajid S, et al. Superior Stability and Efficiency Over 20% Perovskite Solar Cells Achieved by a Novel Molecularly Engineered Rutin–AgNPs/Thiophene Copolymer[J]. Advanced Science, 2018: 1800568.||PDF       

018、Lehao Liu, Meicheng Li, Jing Lyu, et al. Facile and Green Preparation of Three-Dimensionally Nanoporous Copper Films by Low-Current Electrical Field-Induced Assembly of Copper Nanoparticles for Lithium-Ion Battery Applications[J].Journal of Materials Engineering and Performance, 2018, 27(9): 4680-4692.||PDF                        

017、梅文明,李偲,杨立滨,李春来,郗文康,Saif Mubaarak Abdulrahman Abd,et al.不同无功控制方式下光伏并网的影响及应对策略[J]. 中国测试, 2018, 44(9).||PDF                       

016、Yingfeng Li, Mengqi Cui, Hejin Yan,et al. Excellent Infrared Nonlinear Optical Crystals BaMO(IO3)5(M=V,Ta) Predicted by First Principle Calculations[J]. Materials, 2018, 11(10): 1809.||PDF                       

015、Chen L, Gao Z, Zheng Y, et al. 14.1% efficiency hybrid planar-Si/organic heterojunction solar cells with SnO2 insertion layer[J]. Solar Energy, 2018, 174: 549-555.||PDF                        

014、Zhiqiang D, Meicheng L, Chonto T M. Effective Light Absorption Using the Double-sided Pyramid Gratings for Thin-Film Silicon Solar Cell[J]. Nanoscale Research Letters, 2018, 13(1): 192.||PDF                        

013、Sajid S, Elseman A M, Huang H, et al. Breakthroughs in NiO x-HTMs towards stable, low-cost and efficient perovskite solar cells[J]. Nano Energy, 2018. ||PDF                        

012、H.G. Yang,J.D. Zhang, M.C. Li , et al.Effects of deposition pressure on Cu2ZnSnS4 films prepared by one-step sputtering with quaternary target [J]. Bulgarian Chemical Communications, 2018, 50(2):324-328.||PDF                      

011、Manoj Kumar Panjwani,Li Meicheng, Idris Khan,et al.Solar Concentrator's Effect on Solar Panel Efficiency.[J].  Sukkur IBA Journal of Emerging Technologies ,2018.Vol.1, No.1. ||PDF                      

010、Dong Wei, Fusheng Ma, Rui Wang, et al. Ion-Migration Inhibition by the Cation–π Interaction in Perovskite Materials for Efficient and Stable Perovskite Solar Cells[J]. Advanced Materials, 2018: 1707583. ||PDF                    

009、Jinhui Nie, Zewei Ren, Jiajia Shao, Chaoran Deng, Liang Xu, Xiangyu Chen, Meicheng Li, Zhong Lin Wang. Self-Powered Microfluuidic Transport SystemBased on Triboelectric Nanogenerator andElectrowetting Technique[J], ACS Nano, 2018, 12(2): 1491-1499. ||PDF                        

008、Nian-Wu Li, Xinyu Du, Ji-Lei Shi, Xiuling Zhang, Wei Fan, Jiaona Wang, Shuyu Zhao, Yuebo Liu, Weihua Xu, Meicheng Li, Yu-Guo Guo, Congju Li. Graphene@hierarchical meso- / microporous carbon for ultrahigh energy density lithium-ion capacitors[J], Electrochimica Acta, 2018: 1801606. ||PDF                       

007、Chaoran Deng, Wei Tang, Long Liu, Baodong Chen, Meicheng Li, Zhong Lin Wang. Self‐Powered Insole Plantar Pressure Mapping System[J]. Advanced Functional Materials, 2018: 1801606. ||PDF                      

006、Elseman A M, Shalan A E, Sajid S, et al. Copper-Substituted Lead Perovskite Materials Constructed with Different Halides for Working (CH3NH3) 2CuX4-Based Perovskite Solar Cells from Experimental and Theoretical View[J]. ACS applied materials & interfaces, 2018, 10(14): 11699-11707. ||PDF                        

005、Sajid S, Elseman A M, Ji J, et al. Computational Study of Ternary Devices: Stable, Low-Cost, and Efficient Planar Perovskite Solar Cells[J]. Nano-Micro Lett, 2018, 10(3):51. ||PDF                       

004、Ikhmayies, Shadia, Li Y, Luo Y, Li M, et al. Advances in Silicon Solar Cells[M]. Springer, 2018. ||PDF                      

003、Chu L, Ding L, Wang C, et al. Unusual Electrical Transport Driven by the Competition between Antiferromagnetism and Ferromagnetism in Antiperovskite Mn3Zn1-xCoxN[J]. Materials, 2018, 11(2): 286. ||PDF                        

002、Li Y, Liu W, Luo Y, et al. Oxidation of silicon nanowire can transport much more light into silicon substrate[J]. Optics Express, 2018, 26(2): A19-A29. ||PDF                       

001、Sajid, A M Elseman, Jun Ji, et al. Novel hole transport layer of nickel oxide composite with carbon for high-performance perovskite solar cells[J]. Chinese Physics B, 27(1): 17305-017305. ||PDF


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