Journal of Inorganic Materials ›› 2024, Vol. 39 ›› Issue (12): 1316-1324.DOI: 10.15541/jim20240190
Special Issue: 【能源环境】热电材料(202412)
• RESEARCH ARTICLE • Previous Articles Next Articles
TIAN Zhen1(), JIANG Quanwei1, LI Jianbo1, YU Lifeng1, KANG Huijun1,2(
), WANG Tongmin1,2
Received:
2024-04-12
Revised:
2024-06-06
Published:
2024-07-03
Online:
2024-07-03
Contact:
KANG Huijun, professor. E-mail: kanghuijun@dlut.edu.cnAbout author:
TIAN Zhen (1994-), male, PhD candidate. E-mail: drtianzhen@mail.dlut.eud.cn
Supported by:
CLC Number:
TIAN Zhen, JIANG Quanwei, LI Jianbo, YU Lifeng, KANG Huijun, WANG Tongmin. Simultaneous Optimization of Electrical and Thermal Transport Properties of BiSbSe1.50Te1.50 Thermoelectrics by Hot Deformation[J]. Journal of Inorganic Materials, 2024, 39(12): 1316-1324.
Fig. 3 Texture patterns of HD0 and HD2 bulk samples (a) Pole figures along (006), (015), (1010), and (0018) directions; (b) Inverse pole figures (IPFs) and (c) orientation distribution function (ODF) patterns of HD0 and HD2 samples
Fig. 4 (a, c, e) SEM images of the fractured surface, and (b, d, f) the corresponding reconstructed 3D morphologies of HD0, HD1 and HD2 bulk samples (a, b) HD0; (c, d) HD1; (e, f) HD2
Fig. 5 Electrical transport properties of HD0, HD1 and HD2 bulk samples (a) Seebeck coefficient S; (b) Electrical conductivity σ; (c) Carrier concentration nH and carrier mobility μH at 323 K; (d) Power factor PF
Fig. 6 Intrinsic electrical transport properties of HD0, HD1 and HD2 bulk samples (a) nH-dependent |S|; (b) Carrier effective mass m* and reduced Fermi level η; (c) Temperature-dependent weighted carrier mobility μw
Fig. 7 Thermal transport properties of HD0, HD1 and HD2 bulk samples (a) Total thermal conductivity κtotal; (b) Electrical thermal conductivity κele; (c) Sum of the lattice thermal conductivity and bipolar thermal conductivity κL+κb; (d) Ratio μw/(κL+κb) as a function of temperature
Fig. 8 ZT of HD0, HD1 and HD2 bulk samples (a, b) Temperature-dependent (a) quality factor B and (b) ZT; (c) Average ZT in the temperature range of 323-550 K
[1] | TIAN Z, WANG J, XIN B Y, et al. Pencil painting like preparation for flexible thermoelectric material of high-performance p-type Na1.4Co2O4 and novel n-type NaxCo2O4. Journal of Materiomics, 2021, 7(5):1153. |
[2] | LI Z, XIAO C, XIE Y. Layered thermoelectric materials: structure, bonding, and performance mechanisms. Applied Physics Reviews, 2022, 9(1):011303. |
[3] | MAO J, CHEN G, REN Z F. Thermoelectric cooling materials. Nature Materials, 2020, 20(4):454. |
[4] | ZHAO Y L, CHENG H L, LI Y X, et al. Quasi-solid conductive gels with high thermoelectric properties and high mechanical stretchability consisting of a low cost and green deep eutectic solvent. Journal of Materials Chemistry A, 2022, 10(8):4222. |
[5] |
BELL L E. Cooling, heating, generating power, and recovering waste heat with thermoelectric systems. Science, 2008, 321(5895):1457.
DOI PMID |
[6] | WANG S N, WANG D Y, SU L Z, et al. Realizing synergistic optimization of thermoelectric properties in n-type BiSbSe3 polycrystals via co-doping zirconium and halogen. Materials Today Physics, 2022, 22: 100608. |
[7] | ZHANG T D, DENG S P, ZHAO X D, et al. Regulation of Ge vacancies through Sm doping resulting in superior thermoelectric performance in GeTe. Journal of Materials Chemistry A, 2022, 10(7):3698. |
[8] | ZHANG X, ZHAO L D. Thermoelectric materials: energy conversion between heat and electricity. Journal of Materiomics, 2015, 1(2):92. |
[9] | HU L P, WU H J, ZHU T J, et al. Tuning multiscale microstructures to enhance thermoelectric performance of n-type bismuth-telluride- based solid solutions. Advanced Energy Materials, 2015, 5(17):1500411. |
[10] | HU L P, GAO H L, LIU H L, et al. Enhancement in thermoelectric performance of bismuth telluride based alloys by multi-scale microstructural effects. Journal of Materials Chemistry, 2012, 22(32):16484. |
[11] | XIE H H, YU C, ZHU T J, et al. Increased electrical conductivity in fine-grained (Zr,Hf)NiSn based thermoelectric materials with nanoscale precipitates. Applied Physics Letters, 2012, 100(25):254104. |
[12] | QIU P F, YANG J, HUANG X Y, et al. Effect of antisite defects on band structure and thermoelectric performance of ZrNiSn half- Heusler alloys. Applied Physics Letters, 2010, 96(15):152105. |
[13] | DASGUPTA T, STIEWE C, HASSDORF R, et al. Effect of vacancies on the thermoelectric properties of Mg2Si1-xSbx (0≤x≤0.1). Physical Review B, 2011, 83(23):235207. |
[14] | HU L P, ZHU T J, LIU H L, et al. Point defect engineering of high-performance bismuth-telluride-based thermoelectric materials. Advanced Functional Materials, 2014, 24(33):5211. |
[15] | GAO H T, ZHAO K P, WULIJI H X G, et al. Adaptable sublattice stabilized high-entropy materials with superior thermoelectric performance. Energy Environmental Science, 2023, 16(12):6046. |
[16] | YU Y, HE D S, ZHANG S Y, et al. Simultaneous optimization of electrical and thermal transport properties of Bi0.5Sb1.5Te3 thermoelectric alloy by twin boundary engineering. Nano Energy, 2017, 37: 203. |
[17] | QIN B C, ZHANG Y, WANG D Y, et al. Ultrahigh average ZT realized in p-type SnSe crystalline thermoelectrics through producing extrinsic vacancies. Journal of the American Chemical Society, 2020, 142(12):5901. |
[18] |
JIANG B B, YONG Y, CUI J, et al. High-entropy-stabilized chalcogenides with high thermoelectric performance. Science, 2021, 371(6531):830.
DOI PMID |
[19] | POPURI S R, POLLET M, DECOURT R, et al. Large thermoelectric power factors and impact of texturing on the thermal conductivity in polycrystalline SnSe. Journal of Materials Chemistry C, 2016, 4(8):1685. |
[20] | FU C G, ZHU T J, LIU Y T, et al. Band engineering of high performance p-type FeNbSb based half-Heusler thermoelectric materials for figure of merit ZT > 1. Energy Environmental Science, 2015, 8(1):216. |
[21] | CHEN H, FAN W H, AN D C, et al. Improvement of thermoelectric performance of SnTe by energy band optimization and carrier regulation. Journal of Inorganic Materials, 2024, 39(3):306. |
[22] | TIAN Z, JIANG Q W, LI J B, et al. Achieving n- and p-type thermoelectric materials with the identical chemical composition BiSbTe1.5Se1.5 by defect structure engineering. Chemical Engineering Journal, 2024, 494: 152954. |
[23] | SUI J H, LI J, HE J Q, et al. Texturation boosts the thermoelectric performance of BiCuSeO oxyselenides. Energy Environmental Science, 2013, 6(10):2916. |
[24] | HU L P, ZHU T J, WANG Y G, et al. Shifting up the optimum figure of merit of p-type bismuth telluride-based thermoelectric materials for power generation by suppressing intrinsic conduction. NPG Asia Materials, 2014, 6(2):88. |
[25] |
YAN X, POUDEL B, MA Y, et al. Experimental studies on anisotropic thermoelectric properties and structures of n-type Bi2Te2.7Se0.3. Nano Letters, 2010, 10(9):3373.
DOI PMID |
[26] | ZHANG L J, WANG J L, SUN Q, et al. Three-stage inter- orthorhombic evolution and high thermoelectric performance in Ag-doped nanolaminar SnSe polycrystals. Advanced Energy Materials, 2017, 7(19):1700573. |
[27] |
CHENG C, LI J B, TIAN Z, et al. Thermoelectric property of In2O3/InNbO4 composites. Journal of Inorganic Materials, 2022, 37(7):724.
DOI |
[28] | LU X, HOU J, ZHANG Q, et al. Effect of Mg content on thermoelectric property of Mg3(1+z)Sb2 compounds. Journal of Inorganic Materials, 2021, 36(8):835. |
[29] | SHEN D Y, CHENG R H, WANG W W, et al. Enhanced thermoelectric performance of p-type Bi2Si2Te6 enabled via synergistically optimizing carrier concentration and suppressing bipolar effect. Materials Today Physics, 2023 37: 101185. |
[30] | LUO Y B, MA Z, HAO S Q, et al. Thermoelectric performance of the 2D Bi2Si2Te6 semiconductor. Journal of the American Chemical Society, 2022, 144(3):1445. |
[31] | MADAR N, GIVON Y, MOGILYANSKY D, et al. High thermoelectric potential of Bi2Te3 alloyed GeTe-rich phases. Journal of Applied Physics, 2016, 120(3):035102. |
[32] | LUO Y B, YANG J Y, LI G. Enhancement of the thermoelectric performance of polycrystalline In4Se2.5 by copper intercalation and bromine substitution. Advanced Energy Materials, 2014, 4(2):1300599. |
[33] | YELGEL O C, SRIVASTAVA G P. Thermoelectric properties of n-type Bi2(Te0.85Se0.15)3 single crystals doped with CuBr and SbI3. Physical Review B, 2012, 85(12):125207. |
[34] | SHUAI J, KIM H S, LAN Y C. Study on thermoelectric performance by Na doping in nanostructured Mg1-xNaxAg0.97Sb0.99. Nano Energy, 2015, 11(12):640. |
[35] | MATARE H F. Carrier transport at grain boundaries in semiconductors. Journal of Applied Physics, 1984, 56(10):2605. |
[36] | SETO J Y W. The electrical properties of polycrystalline silicon films. Journal of Applied Physics, 1975, 46(12):5247. |
[37] | PIKE G E, SEAGER C H. The DC voltage dependence of semiconductor grain-boundary resistance. Journal of Applied Physics, 1979, 50(5):3414. |
[38] | MAY A F, SNYDER G J. Materials, Preparation, and Characterization in Thermoelectrics. Abingdon: Taylor & Francis, 2012: K1-K18. |
[39] | SCHELLING P K, PHILLPOT S R, KEBLINSKI P. Kapitza conductance and phonon scattering at grain boundaries by simulation. Journal of Applied Physics, 2004, 95(11):6082. |
[40] | POLLACK,GERALD L. Kapitza resistance. Reviews of Modern Physics, 1969, 41(1):48. |
[41] | NARDUCCI D, SELEZNEVA E, CEROFOLINI G, et al. Impact of energy filtering and carrier localization on the thermoelectric properties of granular semiconductors. Journal of Solid State Chemistry, 2012, 193: 19. |
[42] | LIN Y, WOOD M, IMASATO K, et al. Expression of interfacial Seebeck coefficient through grain boundary engineering with multi-layer graphene nanoplatelets. Energy Environmental Science, 2020, 13(11):4114. |
[43] | ZHAO L D, ZHANG B P, LI J F, et al. Enhanced thermoelectric and mechanical properties in textured n-type Bi2Te3 prepared by spark plasma sintering. Solid State Sciences, 2008, 10(5):651. |
[44] | SCHULTZ J M, MCHUGH J P, TILLER W A. Effects of heavy deformation and annealing on the electrical properties of Bi2Te3. Journal of Applied Physics, 1962, 33(8):2443. |
[45] | LI Q, CHEN S, LIU K K, et al. Donor-like effect and thermoelectric properties in n-type Bi2Te3-based compounds. Acta Physica Sinica, 2023, 72(9):097101. |
[46] | TOBERER E S, ZEVALKINK A, CRISOSTO N, et al. The Zintl compound Ca5Al2Sb6 for low-cost thermoelectric power generation. Advanced Functional Materials, 2010, 20(24):4375. |
[47] | ZHOU Z F, ZHENG Y P, YANG Y Y, et al. Optimized weighted mobility induced high thermoelectric performance of ZnO-based multilayered thin films. Journal of the American Ceramic Society, 2022, 106(5):2911. |
[48] | SNYDER G J, SNYDER A H, WOOD M, et al. Weighted mobility. Advanced Materials, 2020, 32(25):2001537. |
[49] | GONG Y R, ZHANG S H, HOU Y X, et al. Enhanced density of states facilitates high thermoelectric performance in solution- grown Ge- and In-codoped SnSe nanoplates. ACS Nano, 2022, 17(1):801. |
[50] | XIAO Y, WANG D Y, ZHANG Y, et al. Band sharpening and band alignment enable high quality factor to enhance thermoelectric performance in n-type PbS. Journal of the American Chemical Society, 2020, 142(8):4051. |
[1] | CHENG Jun, ZHANG Jiawei, QIU Pengfei, CHEN Lidong, SHI Xun. Preparation and Thermoelectric Transport Properties of P-doped β-FeSi2 [J]. Journal of Inorganic Materials, 2024, 39(8): 895-902. |
[2] | CHEN Hao, FAN Wenhao, AN Decheng, CHEN Shaoping. Improvement of Thermoelectric Performance of SnTe by Energy Band Optimization and Carrier Regulation [J]. Journal of Inorganic Materials, 2024, 39(3): 306-312. |
[3] | ZHANG Zhe, SUN Tingting, WANG Lianjun, JIANG Wan. Flexible Thermoelectric Films with Different Ag2Se Dimensions: Performance Optimization and Device Integration [J]. Journal of Inorganic Materials, 2024, 39(11): 1221-1227. |
[4] | MENG Yuting, WANG Xuemei, ZHANG Shuxian, CHEN Zhiwei, PEI Yanzhong. Single- and Two-band Transport Properties Crossover in Bi2Te3 Based Thermoelectrics [J]. Journal of Inorganic Materials, 2024, 39(11): 1283-1291. |
[5] | SU Haojian, ZHOU Min, LI Laifeng. Optimization of Thermoelectric Properties of SnTe via Multi-element Doping [J]. Journal of Inorganic Materials, 2024, 39(10): 1159-1166. |
[6] | XIAO Yani, LYU Jianan, LI Zhenming, LIU Mingyang, LIU Wei, REN Zhigang, LIU Hongjing, YANG Dongwang, YAN Yonggao. Hygrothermal Stability of Bi2Te3-based Thermoelectric Materials [J]. Journal of Inorganic Materials, 2023, 38(7): 800-806. |
[7] | HE Danqi, WEI Mingxu, LIU Ruizhi, TANG Zhixin, ZHAI Pengcheng, ZHAO Wenyu. Heavy-Fermion YbAl3 Materials: One-step Synthesis and Enhanced Thermoelectric Performance [J]. Journal of Inorganic Materials, 2023, 38(5): 577-582. |
[8] | LI Jianbo, TIAN Zhen, JIANG Quanwei, YU Lifeng, KANG Huijun, CAO Zhiqiang, WANG Tongmin. Effects of Different Element Doping on Microstructure and Thermoelectric Properties of CaTiO3 [J]. Journal of Inorganic Materials, 2023, 38(12): 1396-1404. |
[9] | WANG Pengjiang, KANG Huijun, YANG Xiong, LIU Ying, CHENG Cheng, WANG Tongmin. Inhibition of Lattice Thermal Conductivity of ZrNiSn-based Half-Heusler Thermoelectric Materials by Entropy Adjustment [J]. Journal of Inorganic Materials, 2022, 37(7): 717-723. |
[10] | CHENG Cheng, LI Jianbo, TIAN Zhen, WANG Pengjiang, KANG Huijun, WANG Tongmin. Thermoelectric Property of In2O3/InNbO4 Composites [J]. Journal of Inorganic Materials, 2022, 37(7): 724-730. |
[11] | LOU Xunuo, DENG Houquan, LI Shuang, ZHANG Qingtang, XIONG Wenjie, TANG Guodong. Thermal and Electrcial Transport Properities of Ge Doped MnTe Thermoelectrics [J]. Journal of Inorganic Materials, 2022, 37(2): 209-214. |
[12] | JIN Min, BAI Xudong, ZHANG Rulin, ZHOU Lina, LI Rongbin. Metal Sulfide Ag2S: Fabrication via Zone Melting Method and Its Thermoelectric Property [J]. Journal of Inorganic Materials, 2022, 37(1): 101-106. |
[13] | ZHANG Cencen, WANG Xue, PENG Liangming. Thermoelectric Transport Characteristics of n-type (PbTe)1-x-y(PbS)x(Sb2Se3)y Systems via Stepwise Addition of Dual Components [J]. Journal of Inorganic Materials, 2021, 36(9): 936-942. |
[14] | YANG Qingyu, QIU Pengfei, SHI Xun, CHEN Lidong. Application of Entropy Engineering in Thermoelectrics [J]. Journal of Inorganic Materials, 2021, 36(4): 347-354. |
[15] | KANG Huijun,ZHANG Xiaoying,WANG Yanxia,LI Jianbo,YANG Xiong,LIU Daquan,YANG Zerong,WANG Tongmin. Effect of Rare-earth Variable-valence Element Eu doping on Thermoelectric Property of BiCuSeO [J]. Journal of Inorganic Materials, 2020, 35(9): 1041-1046. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||