Zhang Yuyou, Pang Kaikai, Zhang Qiang, Li Yanan, Zhou Wenjie, Tan Xiaojian, Noudem Jacques G, Wu Gang, Chen Lidong, Hu Haoyang, Sun Peng, Wu Jiehua, Liu Guo-Qiang, Jiang Jun
School of Material Science and Chemical Engineering, Ningbo University, Ningbo, 315211, China.
Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo, 315201, China.
Small Methods. 2024 Mar;8(3):e2301256. doi: 10.1002/smtd.202301256. Epub 2023 Nov 27.
Power generation modules utilizing thermoelectric (TE) materials are suitable for recycling widespread low-grade waste heat (<600 K), highlighting the immediate necessity for advanced Bi Te -based alloys. Herein, the substantial enhancement in TE performance of the p-type Bi Sb Te (BST) sintered sample is realized by subtly incorporating the non-stoichiometric Ag Te and counteractive Se. Specifically, Ag atoms diffused into the BST lattice improve the density-of-states effective mass (m ) and boost the hole concentration for the suppressed bipolar effect. The addition of Se further improves m prompting the room-temperature power factor upgrade to 46 W cm K . Concurrently, the lattice thermal conductivity is considerably lowered by multiple scattering sources exemplified by Sb-rich nanoprecipitates and dense dislocations. These synergistic results yield a high peak ZT of 1.44 at 375 K and an average ZT of 1.28 between 300 and 500 K in the Bi Sb Te Se + 0.05 wt.% Ag Te sample. More significantly, when coupled with n-type zone-melted Bi Te Se , the integrated 17-pair TE module achieves a competitive conversion efficiency of 6.1% and an output power density of 0.40 W cm at a temperature difference of 200 K, demonstrating great potential for practical applications.
利用热电(TE)材料的发电模块适用于回收广泛存在的低品位废热(<600 K),这凸显了对先进的基于Bi-Te合金的迫切需求。在此,通过巧妙地掺入非化学计量比的Ag-Te和起反作用的Se,实现了p型Bi-Sb-Te(BST)烧结样品热电性能的大幅提升。具体而言,扩散到BST晶格中的Ag原子提高了态密度有效质量(m*),并提高了空穴浓度以抑制双极效应。Se的添加进一步提高了m*,促使室温功率因子提升至46 W cm-1 K-2。同时,以富Sb纳米沉淀和密集位错为例的多种散射源显著降低了晶格热导率。这些协同效应使得Bi-Sb-Te-Se + 0.05 wt.% Ag-Te样品在375 K时具有1.44的高峰值ZT,在300至500 K之间的平均ZT为1.28。更重要的是,当与n型区熔Bi-Te-Se耦合时,集成的17对TE模块在200 K的温差下实现了6.1%的竞争转换效率和0.40 W cm-2的输出功率密度,展现出巨大的实际应用潜力。