Nanocrystal Geometry Governs Phase Transformation Pathways in Palladium Hydride

Fuente: arXiv
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Main Authors: Lee, Daewon, Oaks-Leaf, Sam, Ma, Hyeonjong, He, Jianlong, Wang, Zhiqi, Shi, Yifeng, Ahn, Eonhyoung, Bustillo, Karen C., Song, Chengyu, Ribet, Stephanie M., Dhall, Rohan, Ophus, Colin, Asta, Mark, Yang, Jiwoong, Xia, Younan, Limmer, David T., Zheng, Haimei
Format: Preprint
Published: 2025
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author Lee, Daewon
Oaks-Leaf, Sam
Ma, Hyeonjong
He, Jianlong
Wang, Zhiqi
Shi, Yifeng
Ahn, Eonhyoung
Bustillo, Karen C.
Song, Chengyu
Ribet, Stephanie M.
Dhall, Rohan
Ophus, Colin
Asta, Mark
Yang, Jiwoong
Xia, Younan
Limmer, David T.
Zheng, Haimei
author_facet Lee, Daewon
Oaks-Leaf, Sam
Ma, Hyeonjong
He, Jianlong
Wang, Zhiqi
Shi, Yifeng
Ahn, Eonhyoung
Bustillo, Karen C.
Song, Chengyu
Ribet, Stephanie M.
Dhall, Rohan
Ophus, Colin
Asta, Mark
Yang, Jiwoong
Xia, Younan
Limmer, David T.
Zheng, Haimei
contents Pathways and structural dynamics of phase transformations impact performance of materials in energy and information storage technologies. Palladium hydride ($\mathrm{PdH}_x$) nanocrystals are an ideal model system for studying solute-induced phase transformations, where elastic energy from lattice mismatch between $α$-$\mathrm{PdH}_x$ and $β$-$\mathrm{PdH}_x$ phases is often considered a key to determining the transformation pathways. $α/β$-$\mathrm{PdH}_x$ interfacial elastic energy is affected by the confined geometry of a nanocrystal. However, how nanocrystal geometry influences phase transformation pathways is largely unknown. Using in situ liquid phase transmission electron microscopy, we directly visualize hydrogenation in Pd nanocrystals with two geometries -- a nanocube and a hexagonal nanoplate. Both follow similar sequences of an initially curved nucleus, interface flattening, and reverse-stage nucleation; however, their evolving $α/β$-$\mathrm{PdH}_x$ interfaces exhibit geometry-dependent crystallographic alignments. In nanocubes, $\{100\}$-aligned configurations conform to static elastic energy ordering, representing a pathway that maintains a local mechanical equilibrium, whereas nanoplates display both $\{110\}$- and $\{211\}$-aligned interfaces. Theoretical simulations show that geometry determines the accessibility of alternative phase transformation pathways as the system is driven far from equilibrium during hydrogenation. These findings identify geometry as a fundamental parameter for directing phase transformation pathways, offering design principles for accessing atypical configurations and improving properties of intercalation-based devices.
format Preprint
id arxiv_https___arxiv_org_abs_2601_00093
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Nanocrystal Geometry Governs Phase Transformation Pathways in Palladium Hydride
Lee, Daewon
Oaks-Leaf, Sam
Ma, Hyeonjong
He, Jianlong
Wang, Zhiqi
Shi, Yifeng
Ahn, Eonhyoung
Bustillo, Karen C.
Song, Chengyu
Ribet, Stephanie M.
Dhall, Rohan
Ophus, Colin
Asta, Mark
Yang, Jiwoong
Xia, Younan
Limmer, David T.
Zheng, Haimei
Mesoscale and Nanoscale Physics
Materials Science
Statistical Mechanics
Pathways and structural dynamics of phase transformations impact performance of materials in energy and information storage technologies. Palladium hydride ($\mathrm{PdH}_x$) nanocrystals are an ideal model system for studying solute-induced phase transformations, where elastic energy from lattice mismatch between $α$-$\mathrm{PdH}_x$ and $β$-$\mathrm{PdH}_x$ phases is often considered a key to determining the transformation pathways. $α/β$-$\mathrm{PdH}_x$ interfacial elastic energy is affected by the confined geometry of a nanocrystal. However, how nanocrystal geometry influences phase transformation pathways is largely unknown. Using in situ liquid phase transmission electron microscopy, we directly visualize hydrogenation in Pd nanocrystals with two geometries -- a nanocube and a hexagonal nanoplate. Both follow similar sequences of an initially curved nucleus, interface flattening, and reverse-stage nucleation; however, their evolving $α/β$-$\mathrm{PdH}_x$ interfaces exhibit geometry-dependent crystallographic alignments. In nanocubes, $\{100\}$-aligned configurations conform to static elastic energy ordering, representing a pathway that maintains a local mechanical equilibrium, whereas nanoplates display both $\{110\}$- and $\{211\}$-aligned interfaces. Theoretical simulations show that geometry determines the accessibility of alternative phase transformation pathways as the system is driven far from equilibrium during hydrogenation. These findings identify geometry as a fundamental parameter for directing phase transformation pathways, offering design principles for accessing atypical configurations and improving properties of intercalation-based devices.
title Nanocrystal Geometry Governs Phase Transformation Pathways in Palladium Hydride
topic Mesoscale and Nanoscale Physics
Materials Science
Statistical Mechanics
url https://arxiv.org/abs/2601.00093