TY - JOUR
T1 - Improvement in the thermoelectric properties of porous networked Al-doped ZnO nanostructured materials synthesized
T2 - Via an alternative interfacial reaction and low-pressure SPS processing
AU - Virtudazo, Raymond V.Rivera
AU - Srinivasan, Bhuvanesh
AU - Guo, Quansheng
AU - Wu, Rudder
AU - Takei, Toshiaki
AU - Shimasaki, Yuta
AU - Wada, Hiroaki
AU - Kuroda, Kazuyuki
AU - Bernik, Slavko
AU - Mori, Takao
N1 - Funding Information:
This research work was supported by JSPS JP19H00833, JP19F19720, JP16H06441, JP17H02749, and JST Mirai JPMJMI19A1, CREST JPMJCR19Q4. B. S. thanks JSPS for the postdoctoral fellowship (P19720) and Dr David Berthebaud (CNRS) for the constant support. R. V. R. V. thanks Dr Leila Rubia (De Montfort University, UK) and Ms Christine Celeste Chua-Nakar for their help and Mr Makito Nakatsu and Dr Hidehiko Tanaka from NIMS for the technical support.
Publisher Copyright:
© 2020 the Partner Organisations.
PY - 2020/11/7
Y1 - 2020/11/7
N2 - n-Type ZnO-based semiconducting materials are increasingly studied for thermoelectrics (TE) in the past due to their inexpensive and non-toxic nature coupled with their high Seebeck coefficient and stability at elevated temperatures. However, their high thermal conductivity limits their prospect for TE application. In this work, a novel, simpler and faster bottom-up approach to produce thermoelectric Al-doped ZnO ceramics from nanopowders produced by an interfacial reaction (double emulsion method) followed by consolidation by spark plasma sintering (SPS) is explored. This alternative interfacial reaction yielded porous aggregates composed of nanoparticles, which exhibited distinctly enhanced TE performance after densification by SPS at low pressure, due to the notable improvement in the power factor and pronounced suppression of the lattice thermal conductivity caused by the nano/micro-structure engineered by this bottom-up synthesis technique. This encompasses grain size reduction, inclusion of Al-rich nanoprecipitates, and nanoporosity, thus enabling scattering of phonons of different mean free paths. A maximum figure of merit ZT ∼0.13 at 750 K was obtained for Zn0.97Al0.03O ceramics, a substantial enhancement to the previously reported values for the same composition synthesized by the traditional synthesis methods.
AB - n-Type ZnO-based semiconducting materials are increasingly studied for thermoelectrics (TE) in the past due to their inexpensive and non-toxic nature coupled with their high Seebeck coefficient and stability at elevated temperatures. However, their high thermal conductivity limits their prospect for TE application. In this work, a novel, simpler and faster bottom-up approach to produce thermoelectric Al-doped ZnO ceramics from nanopowders produced by an interfacial reaction (double emulsion method) followed by consolidation by spark plasma sintering (SPS) is explored. This alternative interfacial reaction yielded porous aggregates composed of nanoparticles, which exhibited distinctly enhanced TE performance after densification by SPS at low pressure, due to the notable improvement in the power factor and pronounced suppression of the lattice thermal conductivity caused by the nano/micro-structure engineered by this bottom-up synthesis technique. This encompasses grain size reduction, inclusion of Al-rich nanoprecipitates, and nanoporosity, thus enabling scattering of phonons of different mean free paths. A maximum figure of merit ZT ∼0.13 at 750 K was obtained for Zn0.97Al0.03O ceramics, a substantial enhancement to the previously reported values for the same composition synthesized by the traditional synthesis methods.
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U2 - 10.1039/d0qi00888e
DO - 10.1039/d0qi00888e
M3 - Article
AN - SCOPUS:85095126439
SN - 2052-1545
VL - 7
SP - 4118
EP - 4132
JO - Inorganic Chemistry Frontiers
JF - Inorganic Chemistry Frontiers
IS - 21
ER -