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FourPhonon is a computational package that can calculate four-phonon scattering rates in crystals.
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W. Li, N. Mingo, Ultralow lattice thermal conductivity of the fully filled skutterudite YbFe 4 Sb 12 \mathrm{YbFe_{4}Sb_{12}} due to the flat avoided-crossing filler modes, Physical Review B 91 (14) (2015) 144304
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X. Yang, T. Feng, J. Li, X. Ruan, Stronger role of four-phonon scattering than three-phonon scattering in thermal conductivity of iii-v semiconductors at room temperature, Physical Review B 100 (24) (2019) 245203
2019
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X. Yang, T. Feng, J. S. Kang, Y. Hu, J. Li, X. Ruan, Observation of strong higher-order lattice anharmonicity in Raman and infrared spectra, Physical Review B 101 (16) (2020) 161202 · 2020
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T. Feng, X. Ruan, Higher-order phonon scattering: advancing the quantum theory of phonon linewidth, thermal conductivity and thermal radiative properties , in: Nanoscale Energy Transport, 2053-2563, IOP Publishing, 2020, pp. 2–1 to 2–44 · 2020
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Z. Tong, X. Yang, T. Feng, H. Bao, X. Ruan, First-principles predictions of temperature-dependent infrared dielectric function of polar materials by including four-phonon scattering and phonon frequency shift, Physical Review B 101 (12) (2020) 125416
2020
Later among the works it cites.
T. Feng, A. O’Hara, S. T. Pantelides, Quantum prediction of ultra-low thermal conductivity in lithium intercalation materials, Nano Energy (2020) 104916
2020
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A. Kundu, X. Yang, J. Ma, T. Feng, J. Carrete, X. Ruan, G. K. Madsen, W. Li, Ultrahigh thermal conductivity of θ \theta -phase tantalum nitride, Physical Review Letters 126 (11) (2021) 115901
2021
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