Journal of Inorganic Materials ›› 2022, Vol. 37 ›› Issue (7): 724-730.DOI: 10.15541/jim20210631
Special Issue: 【能源环境】热电材料(202409)
• RESEARCH ARTICLE • Previous Articles Next Articles
CHENG Cheng(), LI Jianbo, TIAN Zhen, WANG Pengjiang, KANG Huijun(
), WANG Tongmin
Received:
2021-10-11
Revised:
2021-11-19
Published:
2022-07-20
Online:
2021-12-02
Contact:
KANG Huijun, professor. E-mail: kanghuijun@dlut.edu.cnAbout author:
CHENG Cheng (1996-), male, Master candidate. E-mail: cc2019@mail.dlut.edu.cn
Supported by:
CLC Number:
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.
Fig. 3 SEM images of (a) pure In2O3 powder, fracture surface for (1-x)In2O3/xInNbO4 (x=(b) 0, (c) 0.04), surface SEM images for (1-x)In2O3/xInNbO4 (x=0.002 (d), x=0.02 (e), x=0.04 (f)); (g-h) elemental distributions of Nb at high magnification for 0.96In2O3/0.04InNbO4
(1-x)In2O3/xInNbO4 | ρm/(g·cm-3) | ρth/(g·cm-3) | ρr/% | n/(×1019, cm-3) | μ/(cm2·V-1·s-1) |
---|---|---|---|---|---|
x=0 | 6.969 | 7.120 | 97.9 | 0.46 | 94.26 |
x=0.002 | 7.016 | 7.119 | 98.6 | 0.78 | 76.22 |
x=0.006 | 6.811 | 7.117 | 95.7 | 5.90 | 38.21 |
x=0.01 | 6.658 | 7.116 | 93.6 | 9.80 | 38.43 |
x=0.02 | 6.598 | 7.112 | 92.8 | 20.88 | 40.22 |
x=0.04 | 6.547 | 7.100 | 92.2 | 45.24 | 39.86 |
Table 1 Measured densities(ρm), theoretical densities(ρth), relative densities (ρr), carrier concentrations (n) and carrier mobilities (μ) of (1-x)In2O3/xInNbO4 samples at room temperature
(1-x)In2O3/xInNbO4 | ρm/(g·cm-3) | ρth/(g·cm-3) | ρr/% | n/(×1019, cm-3) | μ/(cm2·V-1·s-1) |
---|---|---|---|---|---|
x=0 | 6.969 | 7.120 | 97.9 | 0.46 | 94.26 |
x=0.002 | 7.016 | 7.119 | 98.6 | 0.78 | 76.22 |
x=0.006 | 6.811 | 7.117 | 95.7 | 5.90 | 38.21 |
x=0.01 | 6.658 | 7.116 | 93.6 | 9.80 | 38.43 |
x=0.02 | 6.598 | 7.112 | 92.8 | 20.88 | 40.22 |
x=0.04 | 6.547 | 7.100 | 92.2 | 45.24 | 39.86 |
Fig. 6 Temperature dependence of (a) electrical conductivities, (b) Seebeck coefficients and (c) power factors of (1-x)In2O3/xInNbO4, In1.76(Zn0.12Ge0.12)O3[33] and In1.88V0.12O3[34]
Fig. 7 Temperature dependence of (a) total thermal conductivity, (b) electronic thermal conductivity and (c) lattice thermal conductivity of (1-x)In2O3/xInNbO4, In1.76(Zn0.12Ge0.12)O3[33] and In1.88V0.12O3[34]
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