论文著作:
1) S.Q. Wang, W.Y. Huo*, H.C. Feng, X.F. Zhou, F. Fang*, Z.H. Xie, J.K. Shang, J.Q. Jiang. Controlled Self-Assembly of Hollow Core-Shell FeMn/CoNi Prussian Blue Analogs with Boosted Electrocatalytic Activity. Small, 2022, 18: 2203713
2) S.Q. Wang, B.L. Xu, W.Y. Huo*, H.C. Feng, X.F. Zhou, F. Fang*, Z.H. Xie, J.K. Shang, J.Q. Jiang. Efficient FeCoNiCuPd thin-film electrocatalyst for alkaline oxygen and hydrogen evolution reactions.Appl. Catal. B-Environ, 2022, 313: 121472
3) F. Yang, L.M. Dong*, L.C. Zhou, N. Zhang, X.F. Zhou, X.D. Zhang, F. Fang*. Excellent strength and electrical conductivity achieved by optimizing the dual-phase structure in Cu-Fe wires. Mater. Sci. Eng. A, 2022, 849: 143484
4) L. Zhou, F. Fang*, M. Kumagai, Ed Pickering, T.B. Yu, X.D. Zhang. Structure restoration and coarsening of nanocrystalline cementite in cold drawn pearlitic wire induced by low temperature annealing. Scr. Mater., 2022, 215: 114696
5) S.Q. Wang, W.Y. Huo*, F. Fang*, Z.H. Xie, J.K. Shang, J.Q. Jiang. High entropy alloy/C nanoparticles derived from polymetallic MOF as promising electrocatalysts for alkaline oxygen evolution reaction. Chem. Eng. J., 2022, 429: 132410
6) H.C. Feng, L. Cai, L.F. Wang, X.D. Zhang*, F. Fang*. Microstructure and strength in ultrastrong cold-drawn medium carbon steel. J. Mater. Sci. Technol., 2022, 97: 89–100
7) L.C. Zhou, F. Fang*, M. Kumagai, Ed Pickering, X.D. Zhang. A modified pearlite microstructure to overcome the strength-plasticity trade-off of heavily drawn pearlitic wire. Scr. Mater., 2022, 206: 114236
8) D.S. Wei, L.F. Wang, X.J. Hu, X.Y. Mao, Z.H. Xie, F. Fang*. Effect of drawing strain rate on microstructure and mechanical properties of cold-drawn pearlitic steel wires. J. Mater. Sci., 2022, 57: 8924-8939
9) S.Q. Wang, Z.L. Zhang, W.Y. Huo, X.H. Zhang, F. Fang*, Z.H. Xie, J.Q. Jiang. Single-crystal-like black Zr-TiO2 nanotube array film: An efficient photocatalyst for fast reduction of Cr (VI). Chem. Eng. J., 2021, 403: 126331
10) H.C. Feng, L.F. Wang, S.Y. Cui, N. Hansen, F. Fang*, X.D. Zhang. Microstructure and strengthening mechanisms of nanolamellar structures in ultrastrong drawn iron wires. Scr. Mater., 2021, 200: 113906
11) F. Yang, L.M. Dong, L. Cai, L.F. Wang, Z.H. Xie, F. Fang*.Effect of cold drawing strain on the microstructure, mechanical properties and electrical conductivity of low-oxygen copper wires. Mater. Sci. Eng. A, 2021, 818: 141348
12) F. Yang, L.M. Dong, L. Cai, X.J. Hu, F. Fang*. Mechanical properties of FeMnCoCr high entropy alloy alloyed with C/Si at low temperatures. J. Alloy. Compd., 2021, 859:157876
13) D.S. Wei, Q.N. Han, L. Cai, X.G. Min, Z.H. Xie, F. Fang*. Strengthening iron wires through gradient grain structure.Mater. Charact., 2021,171: 110821
14) S.Q. Wang, Z.L. Zhang, W.Y. Huo, K. Zhu, X.H. Zhang, X.F. Zhou, F. Fang*, Z.H. Xie, J.Q. Jiang. Preferentially oriented Ag-TiO2 nanotube array film: An efficient visible light-driven photocatalyst. J. Hazard. Mater.,2020, 399: 123016
15) H.C. Feng, F. Fang*, X.F. Zhou, X.D. Zhang, Z.H. Xie, J.Q. Jiang. Heavily cold drawn iron wires: Role of nano-lamellae in enhancing the tensile strength. Mater. Sci. Eng. A, 2020, 796: 140017
16) D. Wei, X.G. Min, X.J. Hu, Z.H. Xie, F. Fang*. Microstructure and mechanical properties of cold drawn pearlitic steel wires: Effects of drawing-induced heating. Mater. Sci. Eng. A, 2020, 784: 139341
17) L.C. Zhou, F. Fang*, J. Zhou, Z.H. Xie, J.Q. Jiang. Strain-induced coarsening of ferrite lamella in cold drawn pearlitic steel wire. Mater. Sci. Eng. A, 2020, 771: 138602
18) F. Yang, L.M. Dong, X.J. Hu, X.F. Zhou, Z.H. Xie, F. Fang*. Effect of solution treatment temperature upon the microstructure and mechanical properties of hot rolled Inconel 625 alloy.J.Mater. Sci., 2020, 55: 5613-5626
19) D.S. Wei, L. Li, X.G. Min, F. Fang*, Z.H. Xie, J.Q. Jiang. Microstructure and mechanical properties of heavily cold drawn pearlitic steel wires: Effects of low temperature annealing. Mater. Charact., 2019, 153: 108-114
20) 冯汉臣, 闵学刚, 魏大圣, 周立初, 崔世云, 方峰*. 低温回火对超大形变冷拔珠光体钢丝显微组织和力学性能的影响[J]. 金属学报, 2019, 55: 585-592
21) W.Y. Huo, F. Fang*, X.D. Liu, S.Y. Tan, Z.H. Xie, J.Q. Jiang. Remarkable strain-rate sensitivity of nanotwinned CoCrFeNi alloys. Appl. Phys. Lett, 2019,114: 101904
22) L.C. Zhou, F. Fang*, L.P. Wang, X.J. Hu, Z.H. Xie, J.Q. Jiang.Torsion performance of pearlitic steel wires: Effects of morphology and crystallinity of cementite. Mater. Sci. Eng. A, 2019, 743: 425~435
23) W.Y. Huo, F. Fang*, X.D. Liu, S.Y. Tan, Z.H. Xie, J.Q. Jiang. Fatigue resistance of nano-twinned high-entropy alloy films. Mater. Sci. Eng. A, 2019, 739: 26~30
24) L.C. Zhou, F. Fang*, L.F. Wang, H.Q. Chen, Z.H. Xie, J.Q. Jiang. Torsion delamination and recrystallized cementite of heavy drawing pearlite wires after low temperature annealing. Mater. Sci. Eng. A, 2018, 713: 52~60
25) W.Y. Huo, H. Zhou, F. Fang*, X.F. Zhou, Z.H. Xie, J.Q. Jiang. Microstructure and properties of novel CoCrFeNiTax eutectic high-entropy alloys, J. Alloy. Compd., 2018, 735: 897~904
26) W.Y. Huo, X.D. Liu, S.Y. Tan, F. Fang*, Z.H. Xie, J.K. Shang, J.Q. Jiang. Ultrahigh hardness and high electrical resistivity in nano-twinned, nanocrystalline high-entropy alloy films. Appl. Surf. Sci., 2018, 439: 222~225
27) 季培蓓, 周立初, 周雪峰, 方峰*, 蒋建清. 冷拉拔珠光体钢丝的力学性能各向异性研究[J]. 金属学报, 2018, 54: 494-500
28) W.Y. Huo, F. Fang*, H. Zhou, Z.H. Xie, J.K. Shang, J.Q. Jiang. Remarkable strength of CoCrFeNi high-entropy alloy wires at cryogenic and elevated temperatures, Scr. Mater., 2017, 141: 125~128
29) W.Y. Huo, H. Zhou, F. Fang*, X.F. Zhou, Z.H. Xie, J.Q. Jiang. Microstructure and mechanical properties of CoCrFeNiZrx eutectic high-entropy alloys, Mater. Des., 2017, 134: 226~233
30) W.Y. Huo, H. Zhou, F. Fang*, X.J. Hu, Z.H. Xie, J.Q. Jiang. Strain-rate effect upon the tensile behavior of CoCrFeNi high-entropy alloys. Mater. Sci. Eng. A, 2017, 689: 366~369
31) L.C. Zhou, F. Fang*, X. Zhou, Y. Tu, Z.H. Xie, J. Jiang. Cementite nano-crystallization in cold drawn pearlitic wires instigated by low temperature annealing. Scr. Mater., 2016, 120: 5-8
32) F. Fang*, L. Zhou, X. Hu, X. Zhou, Y. Tu, Z. Xie, J. Jiang. Microstructure and mechanical properties of cold-drawn pearlitic wires affect by inherited texture. Mater. Des., 2015,79: 60-67
33) F. Fang*, Y.Y. Zhang, X.Q. Wu, Q.Y. Shao, Z.H. Xie. Electrical and optical properties of nitrogen doped SnO2 thin films deposited on flexible substrates by magnetron sputtering. Mater. Res. Bull., 2015, 68: 240-244
34) 周立初, 胡显军,马驰, 周雪峰, 蒋建清, 方峰*. 珠光体层片取向对冷拔珠光体钢丝形变的影响[J]. 金属学报, 2015, 51(8): 897-903
35) F. Fang*, Y.F. Zhao, L.C. Zhou, X.J. Hu, Z.H. Xie, J.Q. Jiang. Texture inheritance of cold drawn pearlite steel wires after austenitization. Mater. Sci. Eng. A, 2014, 618: 505-510
36) F. Fang*, Y.F. Zhao, P.P. Liu, L.C. Zhou, X.J. Hu, Z.H. Xie. Deformation of Cementite in Cold Drawn Pearlitic Steel Wire. Mater. Sci. Eng. A, 2014, 608: 11-15
37) F. Fang*, X.J. Hu, B.M. Zhang, Z.H. Xie, J.Q. Jiang. Deformation of dual-structure medium carbon steel in cold drawing. Mater. Sci. Eng. A, 2013, 583: 78-83
38) X. H. Ding, F. Fang*, J.Q. Jiang. Electrical and optical properties of N-doped SnO2 thin films prepared by magnetron sputtering.Surf. Coat. Tech., 2013, 231: 67-70
39) X.J. Hu, L. Wang, F. Fang*, Z.Q. Ma, Z.H. Xie, J.Q. Jiang. Origin and mechanism of torsion fracture in cold-drawn pearlitic steel wires. J. Mater. Sci., 2013, 48: 5528-5535
40) Z. Li, M. Paul, Z. T. Jiang, X. L. Zhao, J. Xu, J.Q. Jiang, F. Fang*, Z. Xie*. Designing superhard, self-toughening CrAlN coatings through grain boundary engineering. Acta Mater., 2012, 60: 5735-5744
41) F. Fang*, X.J. Hu, S. H. Chen, Z. H. Xie, J. Q. Jiang. Revealing microstructural and mechanical characteristics of cold-drawn pearlitic steel wires undergoing simulated galvanization treatment. Mater. Sci. Eng. A, 2012, 547(6): 51-54
42) F. Fang*, Q. Li, J. K. Shang. Enhanced visible-light absorption from Ag2O nanoparticles in nitrogen-doped TiO2 thin films. Surf. Coat. Tech., 2011, 205: 2919-2923
43) F. Fang*, J. H. Jiang, S. Y. Tan, A. B. Ma, J. Q. Jiang. Characteristics of a fast low-temperature zinc phosphating coating accelerated by an ECO-friendly hydroxylamine sulfate. Surf. Coat. Tech., 2010, 204: 2381-2385