Heat transport in crystalline organic semiconductors: coexistence of phonon propagation and tunneling

IF 11.9 1区 材料科学 Q1 CHEMISTRY, PHYSICAL npj Computational Materials Pub Date : 2025-02-14 DOI:10.1038/s41524-025-01514-8
Lukas Legenstein, Lukas Reicht, Sandro Wieser, Michele Simoncelli, Egbert Zojer
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Abstract

Understanding heat transport in organic semiconductors is of fundamental and practical relevance. Therefore, we study the lattice thermal conductivities of a series of (oligo)acenes, where an increasing number of rings per molecule leads to a systematic increase of the crystals’ complexity. Temperature-dependent thermal conductivity experiments in these systems disagree with predictions based on the traditional Peierls–Boltzmann framework, which describes heat transport in terms of particle-like phonon propagation. We demonstrate that accounting for additional phonon-tunneling conduction mechanisms through the Wigner Transport Equation resolves this disagreement and quantitatively rationalizes experiments. The pronounced increase of tunneling transport with temperature explains several unusual experimental observations, such as a weak temperature dependence in naphthalene’s thermal conductivity and an essentially temperature-invariant conductivity in pentacene. While the anisotropic thermal conductivities within the acene planes are essentially material-independent, the tunneling contributions (and hence the total conductivities) significantly increase with molecular length in the molecular backbone direction. This, for pentacene results in a surprising minimum of the thermal conductivity at 300 K.

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晶体有机半导体中的热传输:声子传播与隧道效应共存
理解有机半导体中的热传递具有基础和实际意义。因此,我们研究了一系列(寡聚)映烯的晶格热导率,其中每个分子的环数增加导致晶体复杂性的系统增加。这些系统中与温度相关的热导率实验与基于传统的佩尔斯-玻尔兹曼框架的预测不一致,后者以类粒子声子传播的方式描述热传递。我们证明,通过维格纳输运方程计算额外的声子隧穿传导机制解决了这一分歧,并定量地使实验合理化。隧道输运随温度的显著增加解释了几个不寻常的实验观察结果,例如萘的导热系数对温度的依赖性较弱,并五苯的导热系数基本上是温度不变的。虽然各向异性热导率基本上与材料无关,但在分子主链方向上,隧穿贡献(以及总热导率)随着分子长度的增加而显著增加。这对于并五苯的结果是在300k时导热系数的最小值。
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来源期刊
npj Computational Materials
npj Computational Materials Mathematics-Modeling and Simulation
CiteScore
15.30
自引率
5.20%
发文量
229
审稿时长
6 weeks
期刊介绍: npj Computational Materials is a high-quality open access journal from Nature Research that publishes research papers applying computational approaches for the design of new materials and enhancing our understanding of existing ones. The journal also welcomes papers on new computational techniques and the refinement of current approaches that support these aims, as well as experimental papers that complement computational findings. Some key features of npj Computational Materials include a 2-year impact factor of 12.241 (2021), article downloads of 1,138,590 (2021), and a fast turnaround time of 11 days from submission to the first editorial decision. The journal is indexed in various databases and services, including Chemical Abstracts Service (ACS), Astrophysics Data System (ADS), Current Contents/Physical, Chemical and Earth Sciences, Journal Citation Reports/Science Edition, SCOPUS, EI Compendex, INSPEC, Google Scholar, SCImago, DOAJ, CNKI, and Science Citation Index Expanded (SCIE), among others.
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