姓 名:楊俊傑
性 别:男
學 位:博士
研究方向:
金屬大氣腐蝕與防護,腐蝕電化學理論,金屬表面功能性塗層技術
郵 箱:junjieyang@jnu.edu.cn
職稱及職務:副教授
工作經曆:
2022.10-至今:太阳集团app首页先進耐磨蝕及功能材料研究院,副教授,碩士研究生導師
2019.03-2022.09:太阳集团app首页先進耐磨蝕及功能材料研究院,講師,碩士研究生導師
承擔課程:
本科生課程《機械制圖/機械制圖CAD》
本科生課程《金屬腐蝕與表面防護》
碩士研究生課程《材料腐蝕原理》
科學研究:
2018年博士畢業于哈爾濱工業大學,期間(2015年10月至2018年1月)獲得國家留學基金委資助,赴德國Helmholtz Zentrum Geesthacht(現更名為Helmholtz Zentrum Hereon)進行為期2年的公派聯合培養。主要從事鎂合金腐蝕電化學理論、鎂合金緩蝕劑和先進表面防護技術等研究工作。近年來,獲批主持國家自然科學基金-青年基金項目(項目編号:52101084),廣東省基礎與應用基礎研究基金區域聯合基金-面上項目和青年項目,廣州市基礎與應用基礎研究基金,廣東省普通高校特色創新項目和中央高校基本科研業務費青年基金,同時還作為項目骨幹成員參與國家重點研發計劃(項目編号:2020YFC1107202)。在Corrosion Science,Journal of Magnesium and Alloys,ACS Applied Materials & Interfaces,Surface and Coatings Technology和Wear等學術期刊發表研究論文30餘篇。擔任Rare Metals和China Foundry等SCI學術期刊青年編委以及中國腐蝕與防護協會緩蝕劑與水處理專業委員會委員。
代表性論文:
[1] J. Yang, P. Jiang, Y. Qiu, C.-Y. Jao, C. Blawert, S. Lamaka, A. Bouali, X. Lu, M.L. Zheludkevich, W. Li, Experimental and quantum chemical studies of carboxylates as corrosion inhibitors for AM50 alloy in pH neutral NaCl solution, J. Magnes. Alloys. 10 (2022) 555–568.
[2] Y. Qiu, X. Tu, X. Lu, J. Yang, A novel insight into synergistic corrosion inhibition of fluoride and DL-malate as a green hybrid inhibitor for magnesium alloy, Corros. Sci. 199 (2022) 110177.
[3] Y. Qiu, J. Li, Y. Bi, X. Lu, X. Tu, J. Yang, Insight into synergistic corrosion inhibition of 3-amino-1,2,4-triazole-5-thiol (ATT) and NaF on magnesium alloy: Experimental and theoretical approaches, Corros. Sci. 208 (2022) 110618.
[4] J. Li, H. Qiu, X. Zhang, H.L. Yu, J. Yang, X. Tu, W. Li, Effects of (Ti, Mo) C particles on the abrasive wear -corrosion of low alloy martensitic steel, Wear. 496–497 (2022) 204288.
[5] Y. Qiu, L. Chen, J. Yang, D. Zeng, H. Liu, J. Han, Q. Li, J. Li, X. Tu, W. Li, Mechanistic Understanding of the Corrosion Behaviors of AZ31 Finished by Wire Electric Discharge Machining, J. Electrochem. Soc. 168 (2021) 071507.
[6] J. Li, Y. Qiu, J. Yang, Y. Sheng, Y. Yi, X. Zeng, L. Chen, F. Yin, J. Su, T. Zhang, X. Tong, B. Guo, Effect of grain refinement induced by wire and arc additive manufacture (WAAM) on the corrosion behaviors of AZ31 magnesium alloy in NaCl solution, J. Magnes. Alloys. (2021).
[7] Y. Liu, J. Yang, H. Yang, K. Li, Y. Qiu, W. Zhang, S. Zhou, Cu-bearing 316L stainless steel coatings produced by laser melting deposition: Microstructure and corrosion behavior in simulated body fluids, Surf. Coat. Technol. 428 (2021) 127868.
[8] H. Liu, J. Yang, X. Zhao, Y. Sheng, W. Li, C.-L. Chang, Q. Zhang, Z. Yu, X. Wang, Microstructure, mechanical properties and corrosion behaviors of biomedical Ti-Zr-Mo-xMn alloys for dental application, Corros. Sci. 161 (2019) 108195.
[9] J. Yang, C. Blawert, S.V. Lamaka, K.A. Yasakau, L. Wang, D. Laipple, M. Schieda, S. Di, M.L. Zheludkevich, Corrosion inhibition of pure Mg containing a high level of iron impurity in pH neutral NaCl solution, Corros. Sci. 142 (2018) 222–237.
[10] J. Yang, C. Blawert, S.V. Lamaka, D. Snihirova, X. Lu, S. Di, M.L. Zheludkevich, Corrosion protection properties of inhibitor containing hybrid PEO-epoxy coating on magnesium, Corros. Sci. 140 (2018) 99–110.
[11] J. Yang, S. Di, C. Blawert, S.V. Lamaka, L. Wang, B. Fu, P. Jiang, L. Wang, M.L. Zheludkevich, Enhanced Wear Performance of Hybrid Epoxy-Ceramic Coatings on Magnesium Substrates, ACS Appl. Mater. Interfaces. 10 (2018) 30741–30751.
[12] L. Wang, M. Oehring, U. Lorenz, J. Yang, F. Pyczak, Influence of alloying additions on L12 decomposition in γ-γ′ Co-9Al-9W-2X quaternary alloys, Scr. Mater. 154 (2018) 176–181.
[13] D. Zhou, Y. Gao, J. Yang, Y.C. Li, G. Shao, G. Zhang, T. Li, L. Li, Light-Ultrasound Driven Collective “Firework” Behavior of Nanomotors, Adv. Sci. 5 (2018) 1800122.
[14] H. Liu, J. Yang, X. Zhao, Y. Sheng, W. Li, C.-L. Chang, Q. Zhang, Z. Yu, X. Wang, Microstructure, mechanical properties and corrosion behaviors of biomedical Ti-Zr-Mo-xMn alloys for dental application, Corros. Sci. 161 (2019) 108195.
[15] J. Yang, X. Lu, C. Blawert, S. Di, M.L. Zheludkevich, Microstructure and corrosion behavior of Ca/P coatings prepared on magnesium by plasma electrolytic oxidation, Surf. Coat. Technol. 319 (2017) 359–369.