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Optimization of electric vehicle charging and scheduling based on VANETs Journal article
Sun, Tianyu, He, Ben Guo, Chen, Junxin, Lu, Haiyan, Fang, Bo, Zhou, Yicong. Optimization of electric vehicle charging and scheduling based on VANETs[J]. Vehicular Communications, 2024, 50, 100857.
Authors:  Sun, Tianyu;  He, Ben Guo;  Chen, Junxin;  Lu, Haiyan;  Fang, Bo; et al.
Favorite | TC[WOS]:0 TC[Scopus]:0  IF:5.8/6.4 | Submit date:2024/12/05
Electric Vehicle  Charging  Resource Allocation  
A Reduced-Order Impedance Model and Analytical Loop-Correction Stabilization Method for Electric Vehicle DC Charging Station Journal article
Lin, Gang, Wang, Shaoyang, Dai, Ningyi, Li, Yong, Liu, Jiayan, Rehtanz, Christian, Li, Sheng, Zhou, Yang. A Reduced-Order Impedance Model and Analytical Loop-Correction Stabilization Method for Electric Vehicle DC Charging Station[J]. IEEE Transactions on Power Delivery, 2024, 39(4), 2194-2206.
Authors:  Lin, Gang;  Wang, Shaoyang;  Dai, Ningyi;  Li, Yong;  Liu, Jiayan; et al.
Favorite | TC[WOS]:0 TC[Scopus]:0  IF:3.8/4.2 | Submit date:2024/05/16
Analytical Loop Correction Method  Energy Storage  Ev Charging Station  Low-frequency Oscillation  Multi-timescale Reduced-order Impedance Model  
Highly-Entangled Hydrogel Electrolyte for Fast Charging/Discharging Properties in Aqueous Zinc Ion Batteries Journal article
Shen, Zhaoxi, Liu, Yu, Li, Zhongheng, Tang, Ziqing, Pu, Jun, Luo, Lei, Ji, Yu, Xie, Junpeng, Shu, Zheng, Yao, Yagang, Zhang, Ning, Hong, Guo. Highly-Entangled Hydrogel Electrolyte for Fast Charging/Discharging Properties in Aqueous Zinc Ion Batteries[J]. Advanced Functional Materials, 2024, 2406620.
Authors:  Shen, Zhaoxi;  Liu, Yu;  Li, Zhongheng;  Tang, Ziqing;  Pu, Jun; et al.
Favorite | TC[WOS]:0 TC[Scopus]:2  IF:18.5/19.6 | Submit date:2024/08/05
Fast Charging/discharging  Highly-entangled Polyacrylamide  Hydrogel Electrolyte  Proton Ion Batteries  Zn/mno2 Batteries  
Optimal Bivariate Control Strategy of Multi-Stage Constant Current Charging for IPT-Based Wireless Electric Vehicle Charging Journal article
Io-Wa Iam, Zhaoyi Ding, Chi-Fong Ieong, Chi-Seng Lam, Rui P. Martins, Pui-In Mak. Optimal Bivariate Control Strategy of Multi-Stage Constant Current Charging for IPT-Based Wireless Electric Vehicle Charging[J]. IEEE TRANSACTIONS ON TRANSPORTATION ELECTRIFICATION, 2024, 10(2), 4513-4528.
Authors:  Io-Wa Iam;  Zhaoyi Ding;  Chi-Fong Ieong;  Chi-Seng Lam;  Rui P. Martins; et al.
Favorite | TC[WOS]:3 TC[Scopus]:3  IF:7.2/7.9 | Submit date:2023/08/31
Bivariate Control Strategy  Efficiency Optimization  Electric Vehicle (Ev) Charging  Inductive Power Transfer (Ipt)  Multistage Constant Current (Mscc) Charging  Variable Inductance  
A 27 W Wireless Power Transceiver With Compact Single-Stage Regulated Class-E Architecture and Adaptive ZVS Control Journal article
Ma, Xiaofei, Ki, Wing Hung, Lu, Yan. A 27 W Wireless Power Transceiver With Compact Single-Stage Regulated Class-E Architecture and Adaptive ZVS Control[J]. IEEE Journal of Solid-State Circuits, 2024, 59(6), 1782-1793.
Authors:  Ma, Xiaofei;  Ki, Wing Hung;  Lu, Yan
Favorite | TC[WOS]:1 TC[Scopus]:1  IF:4.6/5.6 | Submit date:2024/07/04
Ac-dc  Adaptive Dead Time  Dc-ac  Device-to-device (D2d)  Gan Driver  Power Amplifier (Pa)  Rectifier  Single-stage Regulation  Wireless Fast Charging  Wireless Power Transfer  Zero-voltage Switching (Zvs)  
Flexible Deep Learning-Based State of Health Estimation of Lithium-Ion Batteries with Features Extracted from Partial Charging Curves Journal article
Lai, Rucong, Li, Xiaoyu, Wang, Jie. Flexible Deep Learning-Based State of Health Estimation of Lithium-Ion Batteries with Features Extracted from Partial Charging Curves[J]. Batteries, 2024, 10(5), 164.
Authors:  Lai, Rucong;  Li, Xiaoyu;  Wang, Jie
Favorite | TC[WOS]:0 TC[Scopus]:1  IF:4.6/5.3 | Submit date:2024/06/05
Deep Learning  Lithium-ion Batteries  Partial Charging Curves  State Of Health  
Hydrophobic-aerophilic composite catalysts enable the fast-charging Zn-air battery to operate 1200 h at 50 mA cm−2 Journal article
Xu, Zian, Jiao, Chuanlai, Shu, Zheng, Xia, Yu, Chen, Shaoqing, Chen, Shi, Wang, Hsing Lin. Hydrophobic-aerophilic composite catalysts enable the fast-charging Zn-air battery to operate 1200 h at 50 mA cm−2[J]. Chemical Engineering Journal, 2024, 481, 148798.
Authors:  Xu, Zian;  Jiao, Chuanlai;  Shu, Zheng;  Xia, Yu;  Chen, Shaoqing; et al.
Favorite | TC[WOS]:6 TC[Scopus]:8  IF:13.3/13.2 | Submit date:2024/03/07
Bifunctional Catalysts  Electrochemical Reconstruction  Fast-charging Zn-air Batteries  Graphitic Carbon Nanotubes  Hydrophobic-aerophilic Surface  
Surface chemistry induced robust SEI on graphite surface via soft carbon coating enables fast lithium storage Journal article
Zheng, Biao, Zhou, Wang, Liu, Hui, Chen, Shi, Gao, Peng, Wang, Zhiyong, Liu, Jilei. Surface chemistry induced robust SEI on graphite surface via soft carbon coating enables fast lithium storage[J]. Carbon, 2024, 218, 118729.
Authors:  Zheng, Biao;  Zhou, Wang;  Liu, Hui;  Chen, Shi;  Gao, Peng; et al.
Favorite | TC[WOS]:11 TC[Scopus]:10  IF:10.5/9.2 | Submit date:2024/02/22
Carbon Coating  Electrode-electrolyte Interphases  Fast Charging  Graphite Anodes  Lithium-ion Batteries  
Decoupling Interfacial Kinetics Realizes 5C Fast Charging of Potassium-Ion Batteries Using Graphite Anode Journal article
Zhou, Wang, Mo, Ying, Gao, Peng, Wang, Kexuan, Ke, Jinlong, Liu, Zheng, Chen, Shi, Liu, Jilei. Decoupling Interfacial Kinetics Realizes 5C Fast Charging of Potassium-Ion Batteries Using Graphite Anode[J]. Advanced Functional Materials, 2024, 34(21), 2312994.
Authors:  Zhou, Wang;  Mo, Ying;  Gao, Peng;  Wang, Kexuan;  Ke, Jinlong; et al.
Favorite | TC[WOS]:28 TC[Scopus]:15  IF:18.5/19.6 | Submit date:2024/05/16
Charge Transfer  Extreme Fast Charging  Graphite Anode  Potassium Ions Batteries  Solid Electrolyte Interphase  
Fast Energy Storage of SnS2 Anode Nanoconfined in Hollow Porous Carbon Nanofibers for Lithium-Ion Batteries Journal article
Liang, Fanghua, Dong, Huilong, Dai, Jiamu, He, Honggang, Zhang, Wei, Chen, Shi, Lv, Dong, Liu, Hui, Kim, Ick Soo, Lai, Yuekun, Tang, Yuxin, Ge, Mingzheng. Fast Energy Storage of SnS2 Anode Nanoconfined in Hollow Porous Carbon Nanofibers for Lithium-Ion Batteries[J]. Advanced Science, 2024, 11(4), 2306711.
Authors:  Liang, Fanghua;  Dong, Huilong;  Dai, Jiamu;  He, Honggang;  Zhang, Wei; et al.
Favorite | TC[WOS]:27 TC[Scopus]:23  IF:14.3/16.3 | Submit date:2024/02/22
Charge Carrier Transfer  Hollow Porous Carbon Nanofibers  Lithium-ion Batteries  Sns2 Nanosheets  Ultrahigh Charging Rates