Issue 5, 2023

Rectifying interphases for preventing Li dendrite propagation in solid-state electrolytes

Abstract

Solid-state electrolytes have emerged as the grail for safe and energy-dense Li metal batteries but still face significant challenges of Li dendrite propagation and interfacial incompatibility. In this work, an interface engineering approach is applied to introduce an electronic rectifying interphase between the solid-state electrolyte and Li metal anode. The rectifying behaviour restrains electron infiltration into the electrolyte, resulting in effective dendrite reduction. This interphase consists of a p-Si/n-TiO2 junction and an external Al layer, created using a multi-step sputter deposition technique on the surface of garnet pellets. The electronic rectifying behaviour is investigated via the asymmetric IV responses of on-chip devices and further confirmed via the one-order of magnitude lower current response by electronic conductivity measurements on the pellets. The Al layer contributes to interface compatibility, which is verified from the lithiophilic surface and reduced interfacial impedance. Electrochemical measurements via Li symmetric cells show a significantly improved lifetime from dozens of hours to over two months. The reduction of the Li dendrite propagation behaviour is observed through 3D reconstructed morphologies of the solid-state electrolyte by X-ray computed tomography.

Graphical abstract: Rectifying interphases for preventing Li dendrite propagation in solid-state electrolytes

Supplementary files

Article information

Article type
Paper
Submitted
12 Dec 2022
Accepted
21 Feb 2023
First published
21 Mar 2023
This article is Open Access
Creative Commons BY license

Energy Environ. Sci., 2023,16, 2167-2176

Rectifying interphases for preventing Li dendrite propagation in solid-state electrolytes

X. Yao, X. Lu, Y. Zhou, T. Šamořil, J. Bi, M. G. Masteghin, H. Zhang, L. Askew, J. Kim, F. Xiong, J. Wang, D. C. Cox, T. Sui, I. Gilmore, S. R. P. Silva, L. Mai, G. Hinds, P. R. Shearing, J. Park and Y. Zhao, Energy Environ. Sci., 2023, 16, 2167 DOI: 10.1039/D2EE04006A

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