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Fast ion transport for synthesis and stabilization of β-Zn4Sb3.


ABSTRACT: Mobile ion-enabled phenomena make β-Zn4Sb3 a promising material in terms of the re-entry phase instability behavior, mixed electronic ionic conduction, and thermoelectric performance. Here, we utilize the fast Zn2+ migration under a sawtooth waveform electric field and a dynamical growth of 3-dimensional ionic conduction network to achieve ultra-fast synthesis of β-Zn4Sb3. Moreover, the interplay between the mobile ions, electric field, and temperature field gives rise to exquisite core-shell crystalline-amorphous microstructures that self-adaptively stabilize β-Zn4Sb3. Doping Cd or Ge on the Zn site as steric hindrance further stabilizes β-Zn4Sb3 by restricting long-range Zn2+ migration and extends the operation temperature range of high thermoelectric performance. These results provide insight into the development of mixed-conduction thermoelectric materials, batteries, and other functional materials.

SUBMITTER: Yang D 

PROVIDER: S-EPMC8526605 | biostudies-literature | 2021 Oct

REPOSITORIES: biostudies-literature

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Fast ion transport for synthesis and stabilization of β-Zn<sub>4</sub>Sb<sub>3</sub>.

Yang Dongwang D   Su Xianli X   He Jian J   Yan Yonggao Y   Li Jun J   Bai Hui H   Luo Tingting T   Liu Yamei Y   Luo Hao H   Yu Yimeng Y   Wu Jinsong J   Zhang Qingjie Q   Uher Ctirad C   Tang Xinfeng X  

Nature communications 20211019 1


Mobile ion-enabled phenomena make β-Zn<sub>4</sub>Sb<sub>3</sub> a promising material in terms of the re-entry phase instability behavior, mixed electronic ionic conduction, and thermoelectric performance. Here, we utilize the fast Zn<sup>2+</sup> migration under a sawtooth waveform electric field and a dynamical growth of 3-dimensional ionic conduction network to achieve ultra-fast synthesis of β-Zn<sub>4</sub>Sb<sub>3</sub>. Moreover, the interplay between the mobile ions, electric field, and  ...[more]

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