论文著作:
[1] T. Zhou, J. Wang, M. Huang, R. An, H. Tan, H. Wei, Z. Chen, X. Wang, X. Liu, F. Wang, J. He. Breathable nanowood biofilms as guiding layer for green on-skin electronics. Small, 15 (2019) 1901079.
[2] T. Zhou, H. Wei, H. Tan, X. Wang, H. Zeng, X. Liu, S. Nagao, H. Koga, M. Nogi, T. Sugahara, K. Suganuma. Strongly anisotropic thermal conductivity and adequate breathability of bilayered films for heat management of on-skin electronics. 2D Materials, 5 (2018) 035013.
[3] T. Zhou, F. Liu, K. Suganuma, S. Nagao, Use of graphene oxide in achieving high overall thermal properties of polymer for printed electronics. RSC Advances, 6 (2016) 20621-20628.
[4] T. Zhou, S. Nagao, T. Sugahara, H. Koga, M. Nogi, K. Suganuma, T. Nge, Y. Nishina. Facile identification of the critical content of multilayer graphene oxide for epoxy composite with optimal thermal properties. RSC Advances, 5 (2015) 20376-20385.
[5] T. Zhou, H. Koga, M. Nogi, T. Sugahara, S. Nagao, T. Nge, K. Suganuma, H. Cui, F. Liu, Y. Nishina. Targeted kinetic strategy for improving the thermal conductivity of epoxy composite containing percolating multi-layer graphene oxide chains. eXPRESS Polymer Letters, 9 (2015) 608-623.
[6] T. Zhou, D. Chen, J. Jiu, T. Nge, T. Sugahara, S. Nagao, H. Koga, M. Nogi, K. Suganuma, X. Wang, X. Liu, P. Cheng, T. Wang, D. Xiong. Electrically conductive bacterial cellulose composite membranes produced by the incorporation of graphite nanoplatelets in pristine bacterial cellulose membranes. eXPRESS Polymer Letters, 7 (2013) 756-766.
[7] T. Zhou, X. Wang, P. Cheng, T. Wang, D. Xiong, X. Wang. Improving the thermal conductivity of epoxy resin by the addition of a mixture of graphite nanoplatelets and silicon carbide microparticles. eXPRESS Polymer Letters, 7 (2013) 585-594.
[8] 周天乐, 细菌纤维素导电复合薄膜及其制备方法, 2012-10-03, 中国, ZL201110267429.3发明专利.
[9] T. Zhou, X. Wang, X. Liu, J. Lai. Effect of silane treatment of carboxylic-functionalized multi-walled carbon nanotubes on the thermal properties of epoxy nanocomposites. eXPRESS Polymer Letters, 4 (2010) 217-226.
[10] T. Zhou, X. Wang, X. Liu, D. Xiong. Improved thermal conductivity of epoxy composites using a hybrid multi-walled carbon nanotube/ micro-SiC filler. Carbon, 48 (2010) 1171-1176.
[11] T. Zhou, X. Wang, X. Liu, D. Xiong. Influence of multi-walled carbon nanotubes on the cure behavior of epoxy-imidazole system. Carbon, 47 (2009) 1112-1118.
[12] T. Zhou, X. Wang, H. Zhu, T. Wang. Influence of carboxylic functionalization of MWCNTs on the thermal properties of MWCNTs/DGEBA/EMI-2,4 nanocomposites. Composites Part A: Applied Science and Manufacturing, 40 (2009) 1792-1797.
[13] T. Zhou, X. Wang, M. Gu, D. Xiong. Study on mechanical, thermal and electrical characterizations of nano-SiC/epoxy composites. Polymer Journal, 41(2009) 51-57.
[14] T. Zhou, X. Wang, T. Wang. Cure reaction of multi-walled carbon nanotubes /diglycidyl ether of bisphenol A/2-ethyl-4-methylimidazole (MWCNTs/DGEBA/EMI-2,4) nanocomposites: effect of carboxylic functionalization of MWCNTs. Polymer International, 58 (2009) 445-452
[15] T. Zhou, X. Wang, M. Gu, X. Liu. Study of the thermal conduction mechanism of nano-SiC/DGEBA/EMI-2,4 composites. Polymer, 49 (2008) 4666-4672.
[16] T. Zhou, M. Gu, Y. Jin, J. Wang. Isoconversional method to explore the cure reaction mechanisms and curing kinetics of DGEBA/EMI-2,4/nano-SiC system. Journal of Polymer Science Part A: polymer chemistry, 44 (2006) 371-379.
[17] T. Zhou, M. Gu, Y. Jin, J. Wang. Mechanism and kinetics of epoxy-imidazole cure studied with two kinetic methods. Polymer Journal, 37 (2005) 833-840.
[18] T. Zhou, M. Gu, Y. Jin, J. Wang. Effects of nano-sized carborundum particles and amino silane coupling agent on the cure reaction kinetics of DGEBA/EMI-2,4 system. Polymer, 46 (2005) 6216-6225.
[19] T. Zhou, M. Gu, Y. Jin, J. Wang. Studying on the curing kinetics of a DGEBA/EMI-2,4/nano-sized carborundum system with two curing kinetic methods. Polymer, 46 (2005) 6174-6181.