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Articles

The effect of high concentrations and orientations of Stone–Wales defects on the thermal conductivity of graphene nanoribbons

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Pages 236-242 | Received 16 Dec 2016, Accepted 06 Aug 2017, Published online: 31 Aug 2017

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Lijian Song, Youchen Zhang, Jin Zhan, Ying An, Weimin Yang, Jing Tan & Lisheng Cheng. (2022) Interfacial thermal resistance in polymer composites: a molecular dynamic perspective. Molecular Simulation 48:10, pages 902-925.
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Fuqing Duan, Donghai Wei, Ailing Chen, Xiong Zheng, Huimin Wang & Guangzhao Qin. (2023) Efficient modulation of thermal transport in two-dimensional materials for thermal management in device applications. Nanoscale 15:4, pages 1459-1483.
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Moslem Zare & Reza Asgari. (2021) Probing divacancy defects in a zigzag graphene nanoribbon through an RKKY exchange interaction. Journal of Physics D: Applied Physics 54:9, pages 095302.
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A.V. Savin, E.A. Korznikova, A.M. Krivtsov & S.V. Dmitriev. (2020) Longitudinal stiffness and thermal conductivity of twisted carbon nanoribbons. European Journal of Mechanics - A/Solids 80, pages 103920.
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Te-Hua Fang, Zhe-Wei Lee, Win-Jin Chang & Chao-Chun Huang. (2019) Determining porosity effect on the thermal conductivity of single-layer graphene using a molecular dynamics simulation. Physica E: Low-dimensional Systems and Nanostructures 106, pages 90-94.
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Kefeng Xie, Qiangqiang Jia, Xiangtai Zhang, Li Fu & Guohu Zhao. (2018) Electronic and Magnetic Properties of Stone–Wales Defected Graphene Decorated with the Half-Metallocene of M (M = Fe, Co, Ni): A First Principle Study. Nanomaterials 8:7, pages 552.
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Hai-Peng Li & Rui-Qin ZhangHai-Peng Li & Rui-Qin Zhang. 2018. Phonon Thermal Transport in Silicon-Based Nanomaterials. Phonon Thermal Transport in Silicon-Based Nanomaterials 11 40 .

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