Device‐Level Optimization of n‐Type Mg3(Sb, Bi)2‐Based Thermoelectric Modules toward Applications: A Perspective
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[1] Z. Ren,et al. Intrinsic thermal stability enhancement in n-type Mg3Sb2 thermoelectrics toward practical applications , 2023, Acta Materialia.
[2] Z. Ren,et al. Enhancing the thermal stability of n-type Mg3+xSb1.5Bi0.49Te0.01 by defect manipulation , 2023, Nano Energy.
[3] Z. Ren,et al. Enhanced Thermoelectric Performance of p‐Type Mg3Sb2 for Reliable and Low‐Cost all‐Mg3Sb2‐Based Thermoelectric Low‐Grade Heat Recovery , 2022, Advanced Functional Materials.
[4] Chengyan Liu,et al. Interface and Surface Engineering Realized High Efficiency of 13% and Improved Thermal Stability in Mg3Sb1.5Bi0.5‐Based Thermoelectric Generation Devices , 2022, Advanced Energy Materials.
[5] Terry L. Hendricks,et al. Keynote Review of Latest Advances in Thermoelectric Generation Materials, Devices, and Technologies 2022 , 2022, Energies.
[6] Z. Ren,et al. Realizing High Energy Conversion Efficiency in a Novel Segmented‐Mg3(Sb, Bi)2/Cubic‐GeTe Thermoelectric Module for Power Generation , 2022, Advanced Energy Materials.
[7] Z. Ren,et al. New insights into the effect of chemical bonding strength on thermoelectric performance and stability in YbMg2Bi2 toward practical thermoelectric applications , 2022, Materials Today Physics.
[8] B. Iversen,et al. Insight into the Strategies for Improving the Thermal Stability of Efficient N-Type Mg3Sb2-Based Thermoelectric Materials. , 2022, ACS applied materials & interfaces.
[9] Z. Ren,et al. Composition-dependent contact resistivity in an n-type Mg3Sb Bi2- thermoelectric single leg , 2022, Materials Today Energy.
[10] Chengyan Liu,et al. Synergistic Effect of Band and Nanostructure Engineering on the Boosted Thermoelectric Performance of n‐Type Mg3+δ(Sb, Bi)2 Zintls , 2022, Advanced Energy Materials.
[11] Zihang Liu,et al. Maximizing the performance of n-type Mg3Bi2 based materials for room-temperature power generation and thermoelectric cooling , 2022, Nature communications.
[12] Zhiwei Chen,et al. A record thermoelectric efficiency in tellurium-free modules for low-grade waste heat recovery , 2022, Nature communications.
[13] Chengyan Liu,et al. A general design strategy for thermoelectric interface materials in n-type Mg3Sb1.5Bi0.5 single leg used in TEGs , 2021, Acta Materialia.
[14] Huaizhou Zhao,et al. Next-generation thermoelectric cooling modules based on high-performance Mg3(Bi,Sb)2 material , 2021, Joule.
[15] M. Kanatzidis,et al. High-performance thermoelectrics and challenges for practical devices , 2021, Nature Materials.
[16] Jingfeng Li,et al. Room-temperature thermoelectric materials: Challenges and a new paradigm , 2021, Journal of Materiomics.
[17] K. Tsuchiya,et al. Demonstration of ultrahigh thermoelectric efficiency of ∼7.3% in Mg3Sb2/MgAgSb module for low-temperature energy harvesting , 2021 .
[18] Z. Ren,et al. High thermoelectric energy conversion efficiency of a unicouple of n-type Mg3Bi2 and p-type Bi2Te3 , 2021, Materials Today Physics.
[19] B. Iversen,et al. Improved Thermoelectric Properties of N-Type Mg3Sb2 through Cation-Site Doping with Gd or Ho. , 2021, ACS applied materials & interfaces.
[20] Z. Ren,et al. Towards tellurium-free thermoelectric modules for power generation from low-grade heat , 2021, Nature Communications.
[21] U. Waghmare,et al. Enhanced atomic ordering leads to high thermoelectric performance in AgSbTe2 , 2021, Science.
[22] Z. Ren,et al. Scalable synthesis of n-type Mg3Sb2-xBix for thermoelectric applications , 2020 .
[23] Gang Chen,et al. Thermoelectric cooling materials , 2020, Nature Materials.
[24] K. Romanjek,et al. Thermal stability of Mg2Si0.55Sn0.45 for thermoelectric applications , 2020, Journal of Alloys and Compounds.
[25] Z. Ren,et al. N-type Mg3Sb2-Bi with improved thermal stability for thermoelectric power generation , 2020 .
[26] Lidong Chen,et al. A Device-to-Material Strategy Guiding the “Double-High” Thermoelectric Module , 2020 .
[27] Xiaofang Li,et al. Reliable N-type Mg3.2Sb1.5Bi0.49Te0.01/304 stainless steel junction for thermoelectric applications , 2020 .
[28] Liming Wu,et al. Point defect engineering and machinability in n-type Mg3Sb2-based materials , 2020 .
[29] Han Byul Kang,et al. Bismuth Telluride/Half‐Heusler Segmented Thermoelectric Unicouple Modules Provide 12% Conversion Efficiency , 2020, Advanced Energy Materials.
[30] Han Byul Kang,et al. Bismuth Telluride Thermoelectrics with 8% Module Efficiency for Waste Heat Recovery Application , 2020, iScience.
[31] J. Zou,et al. Advanced Thermoelectric Design: From Materials and Structures to Devices. , 2020, Chemical reviews.
[32] L. Miao,et al. Realizing a High ZT of 1.6 in N-Type Mg3Sb2-Based Zintl Compounds through Mn and Se Codoping. , 2020, ACS applied materials & interfaces.
[33] B. Iversen,et al. Rapid one-step synthesis and compaction of high-performance n-type Mg3Sb2 thermoelectrics. , 2019, Angewandte Chemie.
[34] Xiaofang Li,et al. High‐Performance N‐type Mg3Sb2 towards Thermoelectric Application near Room Temperature , 2019, Advanced Functional Materials.
[35] Shengqiang Bai,et al. Thermoelectric interface materials: A perspective to the challenge of thermoelectric power generation module , 2019, Journal of Materiomics.
[36] Michihiro Ohta,et al. Thermoelectric power generation: from new materials to devices , 2019, Philosophical Transactions of the Royal Society A.
[37] Gang Chen,et al. High thermoelectric cooling performance of n-type Mg3Bi2-based materials , 2019, Science.
[38] Anubhav Jain,et al. Revelation of Inherently High Mobility Enables Mg3Sb2 as a Sustainable Alternative to n‐Bi2Te3 Thermoelectrics , 2019, Advanced science.
[39] Zhiwei Chen,et al. Extraordinary n‐Type Mg3SbBi Thermoelectrics Enabled by Yttrium Doping , 2019, Advanced materials.
[40] G. J. Snyder,et al. Improvement of Low‐Temperature zT in a Mg3Sb2–Mg3Bi2 Solid Solution via Mg‐Vapor Annealing , 2019, Advanced materials.
[41] Yue Chen,et al. Lattice Strain Advances Thermoelectrics , 2019, Joule.
[42] Xinbing Zhao,et al. Low Contact Resistivity and Interfacial Behavior of p-Type NbFeSb/Mo Thermoelectric Junction. , 2019, ACS applied materials & interfaces.
[43] A. Ferrario,et al. Temperature dependent iterative model of thermoelectric generator including thermal losses in passive elements , 2019, Applied Thermal Engineering.
[44] Stephen D. Wilson,et al. Joint effect of magnesium and yttrium on enhancing thermoelectric properties of n-type Zintl Mg3+Y0.02Sb1.5Bi0.5 , 2019, Materials Today Physics.
[45] Y. Liu,et al. Mg3+δSbxBi2−x Family: A Promising Substitute for the State‐of‐the‐Art n‐Type Thermoelectric Materials near Room Temperature , 2018, Advanced Functional Materials.
[46] Li-dong Zhao,et al. Charge and phonon transport in PbTe-based thermoelectric materials , 2018, npj Quantum Materials.
[47] Meng Li,et al. Ultra-high thermoelectric performance in graphene incorporated Cu2Se: Role of mismatching phonon modes , 2018, Nano Energy.
[48] Yue Chen,et al. Extraordinary thermoelectric performance in n-type manganese doped Mg3Sb2 Zintl: High band degeneracy, tuned carrier scattering mechanism and hierarchical microstructure , 2018, Nano Energy.
[49] Wen Li,et al. Advances in Thermoelectric Mg3Sb2and Its Derivatives , 2018, Small Methods.
[50] M. Kanatzidis,et al. Excessively Doped PbTe with Ge-Induced Nanostructures Enables High-Efficiency Thermoelectric Modules , 2018, Joule.
[51] Yue Chen,et al. Manipulation of Band Structure and Interstitial Defects for Improving Thermoelectric SnTe , 2018, Advanced Functional Materials.
[52] Yue Chen,et al. 3D charge and 2D phonon transports leading to high out-of-plane ZT in n-type SnSe crystals , 2018, Science.
[53] Anubhav Jain,et al. Low-Symmetry Rhombohedral GeTe Thermoelectrics , 2018 .
[54] Gang Chen,et al. Advances in thermoelectrics , 2018 .
[55] Terry M. Tritt,et al. Advances in thermoelectric materials research: Looking back and moving forward , 2017, Science.
[56] Jun Mao,et al. Defect Engineering for Realizing High Thermoelectric Performance in n-Type Mg3Sb2-Based Materials , 2017 .
[57] Jun Mao,et al. Manipulation of ionized impurity scattering for achieving high thermoelectric performance in n-type Mg3Sb2-based materials , 2017, Proceedings of the National Academy of Sciences.
[58] B. Iversen,et al. High-Performance Low-Cost n-Type Se-Doped Mg3Sb2-Based Zintl Compounds for Thermoelectric Application , 2017 .
[59] G. J. Snyder,et al. Lattice Dislocations Enhancing Thermoelectric PbTe in Addition to Band Convergence , 2017, Advanced materials.
[60] B. Iversen,et al. Discovery of high-performance low-cost n-type Mg3Sb2-based thermoelectric materials with multi-valley conduction bands , 2017, Nature Communications.
[61] T. Kanno,et al. Isotropic Conduction Network and Defect Chemistry in Mg3+δSb2‐Based Layered Zintl Compounds with High Thermoelectric Performance , 2016, Advanced materials.
[62] K. Yubuta,et al. In-doped multifilled n-type skutterudites with ZT = 1.8 , 2015 .
[63] G. J. Snyder,et al. Dense dislocation arrays embedded in grain boundaries for high-performance bulk thermoelectrics , 2015, Science.
[64] C. Koch,et al. High-Performance Three-Stage Cascade Thermoelectric Devices with 20% Efficiency , 2015, Journal of Electronic Materials.
[65] Elias Kyriakides,et al. Designing high efficiency segmented thermoelectric generators , 2013 .
[66] B. Iversen. Fulfilling thermoelectric promises: β-Zn4Sb3 from materials research to power generation , 2010 .
[67] M. B. Maple,et al. Thermal expansion of skutterudites , 2010 .
[68] G. J. Snyder,et al. Complex thermoelectric materials. , 2008, Nature materials.
[69] Thierry Caillat,et al. Thermoelectric Materials for Space and Automotive Power Generation , 2006 .
[70] G. J. Snyder,et al. Application of the compatibility factor to the design of segmented and cascaded thermoelectric generators , 2004 .
[71] Alfred Schock,et al. RTGs Using PbTe/TAGSThermoelectric Elements for Mars Environmentatl Survey (MESUR) Mission , 1992 .
[72] Z. Ren,et al. Reliable metal alloy contact for Mg3+δBi1.5Sb0.5 thermoelectric devices , 2022, Soft Science.