超润滑技术——迈向零摩擦时代的微观探索与宏观展望
摘要
关键词
全文:
PDF参考
Hod, O., Meyer, E., Zheng, Q. et al. Structural superlubricity and ultralow friction across the length scales. Nature 563, 485–492 (2018).
Hirano M,Kuzumasa S.Physical Review B,1990,41,11837.
Novoselov K S,Geim A K,Morozov S V,et al.Science,306,2004,666-669.
Tomlinson G A.The London,Edinburgh,and Dublin Philosophical Magazine and Journal of Science,1929,7( 46) ,905.
LIU Xingguang, ZHANG Kaifeng, ZHOU Hui, FENG Xingguo, ZHENG Yugang. Development status of superlubrication technology[J].Materials Herald,2021, 35(9): 9150-9156.
Jiao Weiwei, Hou Chunli, Zou Min, et al. Research status and development direction of superlubrication technology[J]. Materials Herald,2021,35(S1):476-480.
Filippov, A. E., Dienwiebel, M., Frenken, J. W. M., Klafter, J. & Urbakh, M.Torque and twist against superlubricity. Phys. Rev. Lett.100,046102 (2008).
Leven I,Krepel D,Shemesh O,et al.Robust Superlubricity in Graphene/h-BN Heterojunctions[J].Journal of Physical Chemistry Letters,2013, 4(1):115-120.
Trambly de Laissardiere, G., Mayou, D. & Magaud, L. Localization of Dirac electrons in rotated graphene bilayers. Nano Lett.10,804–808 (2010).
Yiming S,Davide M, Oded H ,et al.Robust microscale superlubricity in graphite/hexagonal boron nitride layered heterojunctions[J].Nature Materials,2018, 17(10):894-899.
DOI: http://dx.doi.org/10.12345/hgyjxjz.v3i5.28181
Refbacks
- 当前没有refback。

此作品已接受知识共享署名-非商业性使用 4.0国际许可协议的许可。





