锂金属负极具有较高的理论比容量(3860 mAh/g)和较低的还原电势(-3.04 V vs.标准氢电势),被誉为最具发展潜力的负极材料,但是锂金属负极中的枝晶、死锂等问题阻碍了锂金属电池的商业化发展。针对锂金属负极中出现的问题,研究人员提出了...锂金属负极具有较高的理论比容量(3860 mAh/g)和较低的还原电势(-3.04 V vs.标准氢电势),被誉为最具发展潜力的负极材料,但是锂金属负极中的枝晶、死锂等问题阻碍了锂金属电池的商业化发展。针对锂金属负极中出现的问题,研究人员提出了大量的解决方案,其中,三维集流体不仅可以降低电流密度,缓解枝晶生长,还可以容纳锂沉积/溶解过程中发生的体积变化。而碳基三维集流体更是因其稳定的化学性质和较小的密度受到了极大的关注。从碳基三维集流体的制备、改性以及对锂沉积/溶解的影响进行介绍,并对其发展进行了展望。展开更多
Water splitting is an important approach for energy conversion to obtain hydrogen and oxygen. Apart from solar water splitting, electrochemical method plays a key role in the booming field, and it is urgent to develop...Water splitting is an important approach for energy conversion to obtain hydrogen and oxygen. Apart from solar water splitting, electrochemical method plays a key role in the booming field, and it is urgent to develop novel and efficient catalysts to accelerate water splitting reaction. Recently, newly emerging self-supported materials, especially three dimensional(3D) carbon substrate electrochemical catalysts, have attracted great attention benefiting from their fantastic catalytic performances, such as large surface area,enhanced conductivity, tunable porosity, and so on. This review summarizes the outstanding materials used for hydrogen evolution reaction and oxygen evolution reaction. And catalysts that acted as both anode and cathode in two-electrode systems for overall water splitting are introduced systematically. The opportunities and challenges of 3D carbon substrate materials for electrochemical water splitting are proposed.展开更多
文摘锂金属负极具有较高的理论比容量(3860 mAh/g)和较低的还原电势(-3.04 V vs.标准氢电势),被誉为最具发展潜力的负极材料,但是锂金属负极中的枝晶、死锂等问题阻碍了锂金属电池的商业化发展。针对锂金属负极中出现的问题,研究人员提出了大量的解决方案,其中,三维集流体不仅可以降低电流密度,缓解枝晶生长,还可以容纳锂沉积/溶解过程中发生的体积变化。而碳基三维集流体更是因其稳定的化学性质和较小的密度受到了极大的关注。从碳基三维集流体的制备、改性以及对锂沉积/溶解的影响进行介绍,并对其发展进行了展望。
基金supported by the National Natural Science Foundation of China (61525402, 61775095 and 5161101159)Jiangsu Provincial Key Research and Development Plan (BE2017741)
文摘Water splitting is an important approach for energy conversion to obtain hydrogen and oxygen. Apart from solar water splitting, electrochemical method plays a key role in the booming field, and it is urgent to develop novel and efficient catalysts to accelerate water splitting reaction. Recently, newly emerging self-supported materials, especially three dimensional(3D) carbon substrate electrochemical catalysts, have attracted great attention benefiting from their fantastic catalytic performances, such as large surface area,enhanced conductivity, tunable porosity, and so on. This review summarizes the outstanding materials used for hydrogen evolution reaction and oxygen evolution reaction. And catalysts that acted as both anode and cathode in two-electrode systems for overall water splitting are introduced systematically. The opportunities and challenges of 3D carbon substrate materials for electrochemical water splitting are proposed.