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金属锂在含(亚)硫酰基添加剂电解液中电化学可逆性研究 被引量:1
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作者 刘思思 杨军 +2 位作者 王飞 努丽燕娜 王久林 《化学学报》 SCIE CAS CSCD 北大核心 2009年第21期2395-2401,共7页
分别以亚硫酰氯(SOCl_2)、硫酰氯(SO_2Cl_2)、二甲亚砜(DMSO)、苯磺酰氯(BSC)和苯基乙烯基亚砜(PVSO)作为添加剂,加入至1 mol·L^(-1)LiPF_6/碳酸乙烯酯(EC)+碳酸二甲酯(DMC)(体积比为1:1)电解液中,采用恒电流沉积-溶出法、循环伏安... 分别以亚硫酰氯(SOCl_2)、硫酰氯(SO_2Cl_2)、二甲亚砜(DMSO)、苯磺酰氯(BSC)和苯基乙烯基亚砜(PVSO)作为添加剂,加入至1 mol·L^(-1)LiPF_6/碳酸乙烯酯(EC)+碳酸二甲酯(DMC)(体积比为1:1)电解液中,采用恒电流沉积-溶出法、循环伏安法(CV)、电化学阻抗谱(EIS)、X射线光电子能谱(XPS)测试技术,研究了添加剂对电化学金属锂沉积-溶出可逆性以及金属锂负极/电解液界而性质的影响.电化学测试结果表明,添加SO_2Cl_2和BSC能显著改善金属锂电极的循环性能,100%DOD(锂全溶出)条件下,循环效率稳定在90%左右.电化学测试、添加剂分子电子亲和能计算并结合XPS测试结果表明,较早反应成膜的SO2Cl2和BSC添加剂可以在一定程度上抑制电解液溶剂的分解,使锂电极循环效率和寿命得以提高.洞察和比较添加剂的结构揭示,含磺酰基的化合物明显优于含亚磺酰基的化合物. 展开更多
关键词 (亚)硫酰基 添加剂 二次锂电池 锂电极 电化学可逆性
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复合添加剂对全钒液流电池正极电解液的影响 被引量:10
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作者 尹跃龙 李小山 +3 位作者 王树博 尚玉明 谢晓峰 周涛 《化工进展》 EI CAS CSCD 北大核心 2011年第S1期767-769,共3页
为了提高钒电池正极电解液热稳定性和电化学性能,选用两种添加剂进行复合;通过循环伏安法、交流阻抗法和充放电实验考察了硫酸钠和葡萄糖在复合作用下对电解液电化学可逆性以及对电池充放电性能的影响,研究发现:1%硫酸钠和1%葡萄糖复合... 为了提高钒电池正极电解液热稳定性和电化学性能,选用两种添加剂进行复合;通过循环伏安法、交流阻抗法和充放电实验考察了硫酸钠和葡萄糖在复合作用下对电解液电化学可逆性以及对电池充放电性能的影响,研究发现:1%硫酸钠和1%葡萄糖复合添加剂对电解液电化学可逆性和电池充放电容量都有较大提高。 展开更多
关键词 全钒液流电池 复合添加剂 电化学可逆性 充放电特性
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Fuel Cells as Energy Systems: Efficiency, Power Limits and Thermodynamic Behavior
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作者 S. Sieniutycz 《Journal of Energy and Power Engineering》 2011年第1期17-28,共12页
Steady-state model of a high-temperature solid oxide fuel cell (SOFC) is considered, which refers to constant chemical potentials of incoming hydrogen fuel and oxidant. Lowering of the cell voltage below its reversi... Steady-state model of a high-temperature solid oxide fuel cell (SOFC) is considered, which refers to constant chemical potentials of incoming hydrogen fuel and oxidant. Lowering of the cell voltage below its reversible value is attributed to polarizations and imperfect conversions of reactions. An imperfect power formula summarizes the effect of transport laws, irreversible polarizations and efficiency of power yield. Reversible electrochemical theory is extended to the case with dissipative chemical reactions; this case includes systems with incomplete conversions, characterized by "reduced affinities" and an idle run voltage. Efficiency drop is linked with thermodynamic and electrochemical irreversibilities expressed in terms of polarizations (activation, concentration and ohmic). Effect of incomplete conversions is modeled by assuming that substrates can be remained after the reaction and that side reactions may occur. Optimum and feasibility conditions are discussed for basic input parameters of the cell. Calculations of maximum power show that the data differ for power generated and consumed and depend on current intensity, number of mass transfer units, polarizations, electrode surface area, average chemical rate, etc.. These data provide bounds for SOFC energy generators, which are more exact and informative than reversible bounds for electrochemical transformation. 展开更多
关键词 Power limits ENTROPY engines thermal efficiency fuel cells.
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Boosting reaction kinetics and reversibility in Mott-Schottky VS/MoS heterojunctions for enhanced lithium storage 被引量:4
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作者 Yuru Dong Yu Liu +3 位作者 Yanjie Hu Kun Ma Hao Jiang Chunzhong Li 《Science Bulletin》 SCIE EI CAS CSCD 2020年第17期1470-1478,M0004,共10页
Heterostructures have lately been recognized as a viable implement to achieve high-energy Li-ion batteries(LIBs) because the as-formed built-in electric field can greatly accelerate the charge transfer kinetics. Herei... Heterostructures have lately been recognized as a viable implement to achieve high-energy Li-ion batteries(LIBs) because the as-formed built-in electric field can greatly accelerate the charge transfer kinetics. Herein, we have constructed the Mott-Schottky heterostructured VS2/MoS2 hybrids with tailorable 1T/2H phase based on their matchable formation energy, which are made of metallic and few-layered VS2 vertically grown on MoS2 surface. The density functional theory(DFT) calculations unveil that such heterojunctions drive the rearrangement of energy band with a facilitated reaction kinetics and enhance the Li adsorption energy more than twice compared to the MoS2 surface. Furthermore, the VS2 catalytically expedites the Li–S bond fracture and meantime the enriched Mo6+ enables the sulfur anchoring toward the oriented reaction with Li+to form Li2S, synergistically enhancing the reversibility of electrochemical redox. Consequently, the as-obtained VS2/MoS2 hybrids deliver a very large specific capacity of 1273 m Ah g^-1 at 0.1 A g^-1 with 61% retention even at 5 A g^-1. It can also stabilize 100 cycles at 0.5 A g^-1 and 500 cycles at 1 A g^-1. The findings provide in-depth insights into engineering heterojunctions towards the enhancement of reaction kinetics and reversibility for LIBs. 展开更多
关键词 HETEROSTRUCTURE VS2/MoS2 Interface effect High-energy density Li-ion batteries
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