Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published May 28, 2019 | Supplemental Material
Journal Article Open

Solid-State Divalent Ion Conduction in ZnPS_3

Abstract

Next-generation batteries based on divalent working ions have the potential to both reduce the cost of energy storage devices and increase performance. Examples of promising divalent systems include those based on Mg^(2+), Ca^(2+), and Zn^(2+) working ions. Development of such technologies is slow, however, in part due to the difficulty associated with divalent cation conduction in the solid state. Divalent ion conduction is especially challenging in insulating materials that would be useful as solid-state electrolytes or protecting layers on the surfaces of metal anodes. Furthermore, there are no reports of divalent cation conduction in insulating, inorganic materials at reasonable temperatures, prohibiting the development of structure–property relationships. Here, we report Zn^(2+) conduction in insulating ZnPS_3, demonstrating divalent ionic conductivity in an ordered, inorganic lattice near room temperature. Importantly, the activation energy associated with the bulk conductivity is low, 351 ± 99 meV, comparable to some Li+conductors such as LTTO, although not as low as the superionic Li+ conductors. First-principles calculations suggest that the barrier corresponds to vacancy-mediated diffusion. Assessment of the structural distortions observed along the ion diffusion pathways suggests that an increase in the P–P–S bond angle in the [P_2S_6]^(4–) moiety accommodates the Zn^(2+) as it passes through the high-energy intermediate coordination environments. ZnPS_3 now represents a baseline material family to begin developing the structure–property relationships that control divalent ion diffusion and conduction in insulating solid-state hosts.

Additional Information

© 2019 American Chemical Society. Received: January 16, 2019; Revised: February 28, 2019; Publication Date (Web): March 15, 2019. Financial support from Caltech and the Dow Next Generation Educator Fund is gratefully acknowledged. A.J.M. acknowledges postdoctoral fellowship from the Resnick Sustainability Institute at Caltech. M.B.P. acknowledges support from the Mellichamp Sustainability Fellowship at UCSB. Use of the Advanced Photon Source at Argonne National Laboratory was supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, under Contract No. DE-AC02-06CH11357. I.-T.L. was supported by the Air Force Office of Scientific Research through the Young Investigator Program Grant FA9550-18-1-0280. A.S. acknowledges support from the National Science Foundation under Grant No. DMR-1555153. This work made use of the Illinois Campus Cluster, a computing resource operated by the Illinois Campus Cluster Program (ICCP) in conjunction with the National Center for Supercomputing Applications (NCSA) supported by funds from the University of Illinois at Urbana-Champaign. This research is part of the Blue Waters sustained-petascale computing project, which is supported by the National Science Foundation (awards OCI-0725070 and ACI-1238993) and the state of Illinois. Blue Waters is a joint effort of the University of Illinois at Urbana-Champaign and its National Center for Supercomputing Applications. This research used resources of the National Energy Research Scientific Computing Center, a DOE Office of Science User Facility supported by the Office of Science of the U.S. Department of Energy under Contract No. DE- AC02-05CH11231. The authors thank Dr. Chi Ma for assistance in the collection of SEM images and Dr. Sonjong Hwang for assistance in the collection of NMR spectra. The authors declare no competing financial interest.

Attached Files

Supplemental Material - cm9b00207_si_001.pdf

Files

cm9b00207_si_001.pdf
Files (28.8 MB)
Name Size Download all
md5:42fd1d0f8adbc5a992dd3d7d9170547c
28.8 MB Preview Download

Additional details

Created:
August 19, 2023
Modified:
October 20, 2023