[1]Hu J, Shi YN, Sauvage X, Sha G, Lu K. Grain boundary stability governs hardening and softening in extremely fine nanograined metals. Science 2017;355:1292-1296.
[2]Hu J, Zheng XG, Shi YN, Lu K. Effect of a mixture of saccharin and 2-butyne-1,4-diol on electrodeposition of nano-grained Ni-Mo alloy. Journal of the Electrochemical Society 2017;164:D348-D353.
[3]Hu J, Shi YN, Lu K. Thermal analysis of electrodeposited nano-grained Ni-Mo alloys. Scripta Materialia 2018;154:182-185.
[4]Luo HL, Dong JJ, Yao FL, Yang ZW, Li W, Wang J, Xu XH, Hu J*, Wan YZ*. Layer-by-layer assembled bacterial cellulose/graphene oxide hydrogels with extremely enhanced mechanical properties. Nano-Micro Letters 2018;10:42.
[5]Zheng XG, Hu J, Li JX, Shi YN. Achieving ultrahigh hardness in electrodeposited nanograined Ni-based binary alloys. Nanomaterials, 2019;9:546.
[6]Xun X, Wan Y, Zhang Q, Gan D, Hu J*, Luo H*. Low adhesion superhydrophobic AZ31B magnesium alloy surface with corrosion resistant and anti-bioadhesion properties. Applied Surface Science 2019;144566.
[7]Hu J, Li JX, Shi YN. Suppression of grain boundary migration at cryogenic temperature in an extremely fine nanograined Ni-Mo alloy. Journal of Materials Science & Technology 2020;57:65-69.
[8]Qiu J, Pan T, Peng MX, Chen M, Xu JL, Wang J, Wan YZ*, Hu J*. Enhanced physicochemical and biological properties of a low-temperature copperized layer on gradient nanograined pure titanium. ACS Applied Bio Materials 2021; 4(4):3524-3531.
[9]Liu Q, Li YX, Qiu J, Chen M, Wang J, Hu J*. Antibacterial property and bioadaptability of Ti6Al4V alloy with a silvered gradient nanostructured surface layer. Rare Metals 2022; 41(2):621-629.
[10]Chen M*, Wang XQ, Zhang EL, Wan YZ, Hu J*. Antibacterial ability and biocompatibility of fluorinated titanium by plasma-based surface modification. Rare Metals 2022;41:689-699.