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Na doping strategy provides an effective avenue to upgrade the thermoelectric performance of PbTe-based materials by optimizing electrical properties. However, the limited solubility of Na inherently restricts the efficiency of doping, resulting in a relatively low average , which poses challenges for the development and application of subsequent devices. Herein, to address this issue, the introduced spontaneous Pb vacancies and additional Mn doping synergistically promote Na solubility with a further modified valence band structure. Furthermore, the induced massive point defects and multiscale microstructure greatly strengthen the scattering of phonons over a wide frequency range, leading to a remarkable ultralow lattice thermal conductivity of ∼0.42 W m K. As a result, benefiting from the significantly enhanced Seebeck coefficient and superior thermal transports, a high peak of ∼2.1 at 773 K and an excellent average of ∼1.4 between 303 and 823 K are simultaneously achieved in PbNaMnTe. This work proposes a simple and constructive method to obtain high-performance PbTe-based materials and is promising for the development of thermoelectric power generation devices.
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http://dx.doi.org/10.1021/acsami.3c17052 | DOI Listing |
Clin Investig Arterioscler
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Cardiovascular Biochemistry, IR SANT PAU, Barcelona, Spain; CIBER of Diabetes and Metabolic Diseases (CIBERDEM), Madrid, Spain. Electronic address:
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September 2025
College of Food Science and Engineering, Northwest A&F University, Yangling, 712100, PR China. Electronic address:
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September 2025
Department of Food Technology, Faculty of Agro-industrial Technology, Universitas Padjadjaran, Bandung 45363, Indonesia; Université Clermont Auvergne, INRAE, VetAgro Sup, UMRF, F-63370 Lempdes, France.
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College of Chemistry and Chemical Engineering, Southwest Petroleum University, Chengdu, People's Republic of China.
The soil in reclaimed shale gas sites is compacted and suffers from issues like poor drainage, drought conditions, and nutrient deficiency, posing challenges for agricultural production. In this study, rare earth tailings were incorporated into biochar at different mass ratios (rare earth tailings: biochar = 1:1, 1:2, 1:3, 1:4). Subsequently, a series of rare earth tailings-doped biochar materials (REE-BC) were prepared by calcination at 700°C.
View Article and Find Full Text PDFInt J Pharm X
June 2025
Medical School, Southeast University, Nanjing 210009, China.
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