非谐性
声子
凝聚态物理
热导率
材料科学
格子(音乐)
渡线
从头算
从头算量子化学方法
连贯性(哲学赌博策略)
对分布函数
物理
电导率
安德森本地化
热传导
分子振动
热的
分子动力学
作者
Riddhimoy Pathak,Sayan Paul,Shuva Biswas,Swapan K. Pati,Kanishka Biswas
标识
DOI:10.1073/pnas.2521353123
摘要
Realization of unusual particle-to-wave-like crossover in phonon transport and understanding its fundamental structural origin can guide the design of materials with ultralow thermal conductivity. Here, we report such a crossover from particle-like phonon propagation to wave-like coherence with increasing temperature in the zero-dimensional (0D) metal halide, Tl2AgI3. Composed of discrete (Tl6I)5+ and (Ag3I8)5- subunits, the structure exhibits intrinsic lattice instability governed by Pauling's third rule where face-sharing of polyhedra drives Coulombic cationic repulsion causing local distortion of Ag atoms, as confirmed by synchrotron X-ray pair distribution function (X-PDF) analysis and ab initio molecular dynamics (AIMD) simulations. Anharmonic low-energy rattling of Tl is evidenced within the (Tl6I)5+ framework. These structural disorders generate low-frequency localized and anharmonic optical phonons that hybridize with acoustic branches, strongly suppressing lattice thermal conductivity ([Formula: see text]). Consequently, [Formula: see text] drops to ~0.18 W/m.K at 125 K and remains nearly temperature independent, signaling a breakdown of the phonon-gas model, attributed to phonon localization and wave-like coherence, modeled using the linearized Wigner transport equation (LWTE). The phonon localization in the 0D crystal structure results in a crossover from populations conductivity ([Formula: see text]) associated with particle-like phonon propagation to coherence conductivity ([Formula: see text]) through wave-like tunneling, at 175 K. Our study reveals 0D structural confinement along with anharmonic local structural dynamics can enable particle-to-wave-like phonon crossover, establishing a pathway to mixed phononic regimes and suppressed thermal transport.
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