解耦(概率)
塞贝克系数
凝聚态物理
热电效应
材料科学
热电材料
热导率
声子
电阻率和电导率
散射
微晶
电子
物理
热力学
量子力学
控制工程
工程类
冶金
复合材料
作者
Zizhen Lin,X. Y. Zhang,Xiaofan Ping,Lei Hu,Lichuang Wang,Menglei Li,Mengjie Li,Yun Zhang,Xiaolei Li,Peng Li,Cheng Chi,Weigang Ma,Dongming Zhao,Liqiang Mai,Xing Zhang
标识
DOI:10.1016/j.xcrp.2023.101457
摘要
Advancements in thermoelectric performance are confronting challenges because of the coupling of thermoelectric properties. Therefore, it is crucial to design feasible strategies to disrupt this intrinsic coupling while concurrently optimizing the transport of both charge carriers and phonons. This study illustrates the potential of morphological disorder for thermoelectric decoupling by a graphene film (GF) with controllable morphology. A successful decoupling triggered by rising temperature leading to an increase in both the Seebeck coefficient (S) and the electrical conductivity (σ) has been achieved in crystalline GF by creating a disordered micromorphology (a-GF). Fundamentally, morphological disorder supports a temperature-controllable density of states (DOS) at the Fermi level (Ef) by adjusting the weak localization (WL) and the electron-electron interaction (EEI). Simultaneously, a temperature-independent thermal conductivity (k) was obtained in a-GF, attributed to defect phonon scattering rather than electron-phonon interaction. This research provides evidence for the beneficial impact of disordered morphology on thermoelectric decoupling and proposes a promising direction for the optimization of polycrystalline thermoelectric materials.
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