Structurally Triggered Breakdown of the Phonon Gas Model in Crystalline Metal-Organic Frameworks
Abstract
While crystalline materials with glass-like thermal conductivity are fundamentally intriguing, structurally triggering the transition from propagating to diffusive heat transport within a single framework remains a formidable challenge. Here, using extensive machine learning molecular dynamics, we demonstrate a fundamental thermal transport crossover in metal-organic frameworks. We reveal that grafting flexible side chains onto a pristine MOF backbone acts as a structural switch, strongly reducing the thermal conductivity by 70% (from to at 300 K). Crucially, the functionalized derivatives exhibit a drastic transition from a classical Peierls decay to an anomalous, temperature-independent glass-like plateau. Reciprocal- and real-space analyses reveal the microscopic origins: the side chains act as built-in local resonators that trap acoustic energy via strong low-frequency resonant hybridization, while simultaneously inducing extreme steric crowding. Consequently, the heat-carrying phonon modes become critically damped, with their mean free paths strictly confined to the nanometer scale and their lifetimes collapsing to the Ioffe-Regel limit. This work establishes a highly programmable molecular engineering strategy to dismantle the phonon gas model, forcing crystalline frameworks into an extreme diffusive transport regime.
Cite
@article{arxiv.2604.03783,
title = {Structurally Triggered Breakdown of the Phonon Gas Model in Crystalline Metal-Organic Frameworks},
author = {Penghua Ying and Ting Liang and Yun Chen and Yan Chen and Shiyun Xiong and Zheyong Fan and Jianbin Xu and Yilun Liu},
journal= {arXiv preprint arXiv:2604.03783},
year = {2026}
}
Comments
7 pages, 5 figures