Yan Xinxin, Cao Wei, Li Haohuan
Department of Orthopedics, Renmin Hospital, Wuhan University Wuhan 430060 China
The Institute of Technological Sciences, Wuhan University Wuhan 430072 China
RSC Adv. 2023 Jun 16;13(27):18323-18327. doi: 10.1039/d3ra02835f. eCollection 2023 Jun 15.
MXene monolayers have received increasing attention due to their unique properties, particularly their high conductivity, which shows great potential in thermoelectric materials. In this paper, we present a theoretical study of the thermoelectric properties of XNO (X = Hf, Zr) MXene monolayers, taking electron-phonon coupling into consideration. Owing to their similar geometrical structures, electronic band structures, and phonon dispersions, XNO MXene monolayers exhibit homogeneous electron and phonon transport properties. The conduction band shows multi-valley characteristics which leads to better n-type electron transport properties than p-type ones. The maximum values of the n-type power factor can reach 32 μW cm K for the HfNO monolayer and 23 μW cm K for the ZrNO monolayer. In terms of phonon transport, the lattice thermal conductivity for the ZrNO monolayer is higher than that for the HfNO monolayer, due to larger phonon group velocity. Our results show that the HfNO monolayer is more suitable for thermoelectric materials than the ZrNO monolayer, with optimal n-type thermoelectric figure of merit () values of 0.36 and 0.15 at 700 K, respectively. These findings may be useful for the development of wearable thermoelectric devices and sensor applications based on XNO MXene monolayers.
MXene单分子层因其独特性能,尤其是高导电性,在热电材料中展现出巨大潜力,因而受到越来越多关注。本文对XNO(X = Hf、Zr)MXene单分子层的热电性能进行了理论研究,并考虑了电子-声子耦合。由于其相似的几何结构、电子能带结构和声子色散,XNO MXene单分子层呈现出均匀的电子和声子输运特性。导带具有多谷特性,导致n型电子输运性能优于p型。对于HfNO单分子层,n型功率因子的最大值可达32 μW cm K,对于ZrNO单分子层则为23 μW cm K。在声子输运方面,由于声子群速度较大,ZrNO单分子层的晶格热导率高于HfNO单分子层。我们的结果表明,HfNO单分子层比ZrNO单分子层更适合作为热电材料,在700 K时,其最佳n型热电优值()分别为0.36和0.15。这些发现可能有助于基于XNO MXene单分子层的可穿戴热电设备和传感器应用的开发。