无线电能传输WPT(wireless power transfer)技术作为一种新型的电能传输方式以其高可靠性、实用性和安全性而备受关注。然而WPT能否替代传统的有线输电而成为通用技术,其最关键的影响因素之一就是传输效率。首先,针对WPT技术对于传输效...无线电能传输WPT(wireless power transfer)技术作为一种新型的电能传输方式以其高可靠性、实用性和安全性而备受关注。然而WPT能否替代传统的有线输电而成为通用技术,其最关键的影响因素之一就是传输效率。首先,针对WPT技术对于传输效率优化的迫切需求,系统综述了国内外在磁耦合谐振式WPT研究领域中关于传输效率优化方法的研究进展。然后,对WPT系统的研究进展进行了综述,分别从线圈优化设计、谐振链路改进、频率控制及阻抗调节4个方面,介绍了近年来国内外关于磁耦合谐振式WPT传输效率优化方法的研究进展。最后,对WPT技术传输效率优化研究的未来发展趋势进行了展望。展开更多
A series of P3HT:PC71BM polymer solar cells (PSCs) with different PIDTDTQx doping concentrations were fabricated to in- vestigate the effect of the PIDTDTQx as a complementary electron donor on the performance of P...A series of P3HT:PC71BM polymer solar cells (PSCs) with different PIDTDTQx doping concentrations were fabricated to in- vestigate the effect of the PIDTDTQx as a complementary electron donor on the performance of PSCs. The power conversion efficiency (PCE) of the optimized ternary blend PSCs (with 2 wt% PIDTDTQx) reached 3.87%, which is 28% higher than that of the PSCs based on P3HT:PCvlBM (control cells). The short-circuit current density (J^c) was increased to 10.20 mA/cm2 compared with the control cells. The PCE improvement could be attributed to more photon harvest and charge carrier transport by appropriate doping PIDTDTQx. The energy transfer from P3HT to PIDTDTQx was demonstrated from the 650 nm emis- sion intensity decrease and the red-shifted emission peaks from 725 nm to 737 nm along with the increase of PIDTDTQx dop- ing concentrations.展开更多
文摘无线电能传输WPT(wireless power transfer)技术作为一种新型的电能传输方式以其高可靠性、实用性和安全性而备受关注。然而WPT能否替代传统的有线输电而成为通用技术,其最关键的影响因素之一就是传输效率。首先,针对WPT技术对于传输效率优化的迫切需求,系统综述了国内外在磁耦合谐振式WPT研究领域中关于传输效率优化方法的研究进展。然后,对WPT系统的研究进展进行了综述,分别从线圈优化设计、谐振链路改进、频率控制及阻抗调节4个方面,介绍了近年来国内外关于磁耦合谐振式WPT传输效率优化方法的研究进展。最后,对WPT技术传输效率优化研究的未来发展趋势进行了展望。
基金supported by the Fundamental Research Funds for the Central Universities(Grant No.2013JBZ004)the National Natural Science Foundation of China(Grant No.61377029)+1 种基金the Beijing Natural Science Foundation(Grant No.2122050)the State Key Laboratory of Catalysis,Chinese Academy of Sciences(Grant No.n-11-09)
文摘A series of P3HT:PC71BM polymer solar cells (PSCs) with different PIDTDTQx doping concentrations were fabricated to in- vestigate the effect of the PIDTDTQx as a complementary electron donor on the performance of PSCs. The power conversion efficiency (PCE) of the optimized ternary blend PSCs (with 2 wt% PIDTDTQx) reached 3.87%, which is 28% higher than that of the PSCs based on P3HT:PCvlBM (control cells). The short-circuit current density (J^c) was increased to 10.20 mA/cm2 compared with the control cells. The PCE improvement could be attributed to more photon harvest and charge carrier transport by appropriate doping PIDTDTQx. The energy transfer from P3HT to PIDTDTQx was demonstrated from the 650 nm emis- sion intensity decrease and the red-shifted emission peaks from 725 nm to 737 nm along with the increase of PIDTDTQx dop- ing concentrations.