结晶
塞贝克系数
Crystal(编程语言)
功率密度
材料科学
离子键合
功率(物理)
化学
热电效应
离子
纳米技术
化学物理
热力学
物理
计算机科学
有机化学
程序设计语言
作者
Hui Wang,Xinyan Zhuang,Wenke Xie,Hongrun Jin,Rong Liu,Boyang Yu,Jiangjiang Duan,Liang Huang,Jun Zhou
标识
DOI:10.1016/j.xcrp.2022.100737
摘要
Summary: I−/I3− thermocells are promising for low-grade heat harvesting due to their low cost, easily regulated ionic Seebeck coefficient (Se) and potential in integrated thermocells. However, the existing technologies to increase Se just apply to very low concentration of I−/I3− (mmol L−1), which restricts the current and power. Herein, we present a thermosensitive crystallization strategy to increase Se from 0.51 to 1.2 mV K−1 in 0.4 mol L−1 I−/I3− thermocells, leading a maximum power density of 0.74 W m−2. Specifically, the additive of Cs+ can selectively combine with I3− and form thermosensitive crystal CsI3 at the cold side while releasing I3− at the hot side, which induces a concentration gradient of free I3−, thereby improving Se. Besides, the CsI3-driven I−/I3− thermocell can assemble a high-performance device by integrating with a classic p-type cell. Therefore, the thermosensitive crystallization strategy paves a new way to build high-power thermocells for low-grade heat harvesting.
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