Jouhara, H. et al. Waste heat recovery technologies and applications. Therm. Sci. Eng. Prog. 6, 268–289 (2018).
Bell, L. E. Cooling, heating, generating power, and recovering waste heat with thermoelectric systems. Science 321, 1457–1461 (2008).
Article CAS PubMed Google Scholar
Liu, W., Jie, Q., Kim, H. S. & Ren, Z. Current progress and future challenges in thermoelectric power generation: from materials to devices. Acta Mater. 87, 357–376 (2015).
Liu, Z. H., Mao, J., Liu, T.-H., Chen, G. & Ren, Z. F. Nano-microstructural control of phonon engineering for thermoelectric energy harvesting. MRS Bull. 43, 181–186 (2018).
Pei, Y. Z., Wang, H. & Snyder, G. J. Band engineering of thermoelectric materials. Adv. Mater. 24, 6125–6135 (2012).
Article CAS PubMed Google Scholar
Guo, Z. et al. Dopant-dependent pore formation in plastic Ag2Se contributing to ultrahigh thermoelectric performance. Acta Mater. 306, 121917 (2026).
Biswas, K. et al. High-performance bulk thermoelectrics with all-scale hierarchical architectures. Nature 489, 414–418 (2012).
Article CAS PubMed Google Scholar
Jia, B. et al. Pseudo-nanostructure and trapped-hole release induce high thermoelectric performance in PbTe. Science 384, 81–86 (2024).
Article CAS PubMed Google Scholar
Li, J. et al. Low-symmetry rhombohedral GeTe thermoelectrics. Joule 2, 976–987 (2018).
Jiang, Y. et al. Evolution of defect structures leading to high ZT in GeTe-based thermoelectric materials. Nat. Commun. 13, 6087 (2022).
Article CAS PubMed PubMed Central Google Scholar
Qin, B., Kanatzidis, M. G. & Zhao, L.-D. The development and impact of tin selenide on thermoelectrics. Science 386, eadp2444 (2024).
Article CAS PubMed Google Scholar
Zhao, L.-D. et al. Ultrahigh power factor and thermoelectric performance in hole-doped single-crystal SnSe. Science 351, 141–144 (2016).
Article CAS PubMed Google Scholar
Mao, J. et al. Advances in thermoelectrics. Adv. Phys. 67, 69–147 (2018).
Shi, X.-L., Zou, J. & Chen, Z.-G. Advanced thermoelectric design: from materials and structures to devices. Chem. Rev. 120, 7399–7515 (2020).
Article CAS PubMed Google Scholar
Goldsmid, H. J. & Douglas, R. W. The use of semiconductors in thermoelectric refrigeration. Br. J. Appl. Phys. 5, 386 (1954).
Liu, Z. H., Mao, J., Sui, J. H. & Ren, Z. F. High thermoelectric performance of α-MgAgSb for power generation. Energy Environ. Sci. 11, 23–44 (2018).
Zhang, J., Song, L. & Iversen, B. B. Insights into the design of thermoelectric Mg3Sb2 and its analogs by combining theory and experiment. npj Comput. Mater. 5, 76 (2019).
Bano, S., Chetty, R., Babu, J. & Mori, T. Mg3(Sb,Bi)2-based materials and devices rivaling bismuth telluride for thermoelectric power generation and cooling. Device 2, 100408 (2024).
Liu, W. & Bai, S. Thermoelectric interface materials: a perspective to the challenge of thermoelectric power generation module. J. Materiomics 5, 321–336 (2019).
Liu, Z. et al. Demonstration of ultrahigh thermoelectric efficiency of ∼7.3% in Mg3Sb2/MgAgSb module for low-temperature energy harvesting. Joule 5, 1196–1208 (2021).
Ying, P. et al. A robust thermoelectric module based on MgAgSb/Mg3(Sb,Bi)2 with a conversion efficiency of 8.5% and a maximum cooling of 72 K. Energy Environ. Sci. 15, 2557–2566 (2022).
Liu, D. et al. Lattice plainification advances highly effective SnSe crystalline thermoelectrics. Science 380, 841–846 (2023).
Article CAS PubMed Google Scholar
Lee, K.-T. et al. An overview of commercialization and marketization of thermoelectric generators for low-temperature waste heat recovery. iScience 26, 107874 (2023).
Article CAS PubMed PubMed Central Google Scholar
Liang, Z. & Ren, Z. Design of thermoelectric materials and modules for power generation below 300 °C and cooling applications near room temperature. Adv. Mater. 38, e15386 (2026).
Article CAS PubMed Google Scholar
Ming, H., Luo, Z.-Z., Zou, Z. & Kanatzidis, M. G. Strategies and prospects for high-performance Te-free thermoelectric materials. Chem. Rev. 125, 3932–3975 (2025).
Article CAS PubMed Google Scholar
Mao, J., Chen, G. & Ren, Z. Thermoelectric cooling materials. Nat. Mater. 20, 454–461 (2021).
Article CAS PubMed Google Scholar
Zhu, T. et al. Compromise and synergy in high-efficiency thermoelectric materials. Adv. Mater. 29, 1605884 (2017).
Snyder, G. J. & Toberer, E. S. Complex thermoelectric materials. Nat. Mater. 7, 105–114 (2008).
Article CAS PubMed Google Scholar
Liu, R. et al. Thermal-inert and ohmic-contact interface for high performance half-Heusler based thermoelectric generator. Nat. Commun. 13, 7738 (2022).
Article CAS PubMed PubMed Central Google Scholar
Ayachi, S. et al. On the relevance of point defects for the selection of contacting electrodes: Ag as an example for Mg2(Si,Sn)-based thermoelectric generators. Mater. Today Phys. 16, 100309 (2021).
Xie, L. et al. Screening strategy for developing thermoelectric interface materials. Science 382, 921–928 (2023).
Article CAS PubMed Google Scholar
Tang, X., Li, Z., Liu, W., Zhang, Q. & Uher, C. A comprehensive review on Bi2Te3-based thin films: thermoelectrics and beyond. Interdiscip. Mater. 1, 88–115 (2022).
Wu, G. et al. Bi2Te3-based thermoelectric modules for efficient and reliable low-grade heat recovery. Adv. Mater. 36, 2400285 (2024).
LaLonde, A. D., Pei, Y., Wang, H. & Jeffrey Snyder, G. Lead telluride alloy thermoelectrics. Mater. Today 14, 526–532 (2011).
Hong, M., Li, M., Wang, Y., Shi, X.-L. & Chen, Z.-G. Advances in versatile GeTe thermoelectrics from materials to devices. Adv. Mater. 35, 2208272 (2023).
Roychowdhury, S. et al. Enhanced atomic ordering leads to high thermoelectric performance in AgSbTe2. Science 371, 722–727 (2021).
Article CAS PubMed Google Scholar
Shang, H. et al. N-type Mg3Sb2−xBix alloys as promising thermoelectric materials. Research 2020, 1219461 (2020).
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