1.代表性论文

[1]  Chen Chen*, Yan Xu, Hongyun Zhang, Min Zhang, Grain refinement and β phase dispersion of AZ91D magnesium alloy by accumulative back extrusion: microstructure and mechanical properties, Journal of Materials Research and Technology, 37 (2025) 4176–4188

[2]  Chen Chen*, Boyuan Ban, Jingwei Li, Yinhe Lin, Jian Chen, Role of strontium and associated particle enrichment in Si purification using Al-Si-Sr solvent refining, Materials Science in Semiconductor Processing, 195 (2025) 109620.

[3]  Chen Chen*, Junhai Wang, Yu Sun, Areeje Fatima, Jiarui Huang, Preparation of noble metal nanoparticles modified hollow SnO2 dodecahedrons for highly selective hydrogen detection. Vacuum, 239 (2025) 114407.

[4]  Jie Cheng, Yujie Ma, Xiaotian Wang, Liang Cheng, Zhenhua Cao*, Excellent corrosion resistance of Fe37Ni37Cr20Al3Ti3 medium entropy alloy induced by sequential passivation strategy. Journal of Alloys and Compounds, 1034 (2025) 181437.

[5]  Jie Cheng, Yujie Ma, Xiaotian Wang, Liang Cheng, Yaoyao Hu, Tairan Xu, Zhenhua Cao*, Grain refinement and precipitation synergistic strengthening in CuMnNiTix medium-entropy alloys. Materials Science & Engineering A, 922 (2025) 147659.

[6]  Jie Cheng, Yuping Wu*, Shuaishuai Zhu, Sheng Hong, Jiangbo Cheng, Yujun Wang, The coupling effect of cavitation-erosion and corrosion for HVOF sprayed Cu-based medium-entropy alloy coating in 3.5 wt.% NaCl solution. Journal of Materials Research and Technology, 25 (2023) 2936-2947.

[7]  Qin Jing*, Li Xun, Wang Dongsheng, Zhou Chen, Hu Tongsheng, Wang Jingwen, Yang Youwen, Hu Yujun. Microstructure and texture evolution in cold-rolled and annealed oxygen-free copper sheets. Materials 2024, 17: 2202.

[8]  Qin Jing*, Zhou Chen, Wang Dongsheng, Li Xun, Hu Tongsheng, Wang JingWen, Yang Youwen. Effects of microstructure and texture on the deep drawability of C10200 copper sheets[J]. Journal of Materials Research and Technology, 2023, 25: 773-785.

[9]  Haitao Yin, Liqiu Ma, Zhixiang Wang, Zhibin Lu, Shengguo Zhou*, Tailoring lubricity and anticorrosion by CDs-anchoring Ti3C2Tx MXene for the CDs@Ti3C2Tx/EP composite coating, Tribology International, 2026, 214 (PB), 111216.

[10]  Zihan Wu, Shengguo Zhou*, Zhixiang Wang, Munan Yang, Xiaoqiang Liu, Engineering marine-anticorrosive coatings to protect NdFeB via Ti3C2Tx @MoS2 heterojunction, Colloids and Surfaces A: Physicochemical and Engineering Aspects 736C (2026) 139604.

[11]  Chao Yong, Ying Lei*, Juan Li, Yu Li, Lin Xu, Fan Ye, Jian Du, Dongsheng Wang, Zhongjuan Hu, Shaowu Zhang, Multi-scale microstructures and carrier-phonon decoupling in BiCuSeO-CDs composites, Nano Letters, 2025, 25, 23, 9262–9269

[12]  Fan Ye, Ying Lei*, Jian Du, Yu Li, Chao Yong, Lin Xu, Guobin Ni, Shaowu Zhang, Enhanced thermoelectric properties of AgSb1-xPbxBiySe2 achieved via microwave smelting combined with spark plasma sintering, ACS Applied Materials & Interfaces, 2025, 17, 19562–19572

[13]  Ying Lei, Jin Qiu, Rui Liu, Yu Li,* Feng Gao, Chao Yong, Rundong Wan, Huaichuan Hu, Journal of the European Ceramic Society, 2023, 43, 3370-3375 

[14]  Ying Lei, Haoyue Yang, Jin Qiu, Yu Li,* Feng Gao, Chao Yong, Lei Tao, Guangyuan Song, Nan Wang, Yong Min, Sui Peng, Huaichuan Hu, Rundong Wang, Journal of the European Ceramic Society, 2022, 42, 7475-7480

[15]  Xu Liu; Liangliang Huang; Dan Wang*; Wen Wang. Microstructure and compression behavior of powder-metallurgy processed fine-grained TWIP steel, Materials Design, 2026, 262: 115441.

[16]  Dan Wang*, Liangliang Huang, Kun Wang*, Xingfu Wang, Xinfu Wang, Weiguo Wang, Gangling Hao. Microstructure and mechanical properties of a novel twinning induced plasticity steel with two different grain morphologies, J Mater Res Technol., 2023 (24), 3746 -3758.

[17]  Dan Wang*, Kun Wang, Xinfu Wang. Ultrafine-grained twinning-induced plasticity steel prepared by mechanical alloying and spark plasma sintering, Materials Science and Engineering A, 2022, 830(142302).

[18]  Yi Liu, Mengning Xu, Lirong Xiao, Xuefei Chen, Zhaohua Hu, Bo Gao, Ningning Liang, Yuntian Zhu, Yang Cao*, Hao Zhou*. Dislocation array reflection enhances strain hardening of a dual-phase heterostructured high-entropy alloy. Materials Research Letters, 2023, 11(8): 638-647.

[19]  Zhen Peng, Yi Liu (Co-first author), Lirong Xiao, Yue Yang, Bo Gao, Mengning Xu, Zhaohua Hu, Yandong Yu, Xuefei Chen*, Hao Zhou*. Formation mechanism of co-axial grain boundaries in a Mg alloy. Journal of Magnesium and Alloys, 2023, 11(3): 1094-1101.

[20]  Yi Liu, Bo Gao*, Ming Yang, Lirong Xiao, Jiaxin Wang, Jiaxin Ma, Xiangjie Chen, Hao Zhou*, Yuntian Zhu. Significant Hetero-Deformation Induced Strain Hardening in a Dual-Phase Low-Carbon Steel. JOM, 2023, 75(5): 1383-1392.

[21]  Chunming Wang, Yang Shuai, Youwen Yang*, Da Zeng, Xiongwei Liang, Shuping Peng, Cijun Shuai*, Amorphous magnesium alloy with high corrosion resistance fabricated by laser powder bed fusion, Journal of Alloys and Compounds, 2022, 897: 163247.

[22]  Cijun Shuai, Jiading Xie, Zou Yu, Youwen Yang, Chunming Wang*, Enhanced wear resistance of in-situ nanoscale TiC reinforced Ti composites fabricated by additive manufacturing, Vacuum, 2024, 230, 113704.

[23]  Cijun Shuai, Jiading Xie, Xihao Jiang, Shuping Peng, Chunming Wang*, Additively manufactured high entropy alloy with high wear resistance for biomedical implant, Vacuum, 2024, 221, 112939.

[24]  Chao Zhang, Rong Hu, Shaowu Zhang, et al. Impact of precursor content on microstructure and properties of in-situ synthesized Ni60A-xTiC ceramic composite coating. Ceramics International, 2025, 51: 226-239.

[25]  Chao Zhang, Dan Li, Ruidong Wang, et al. High-temperature wear resistance, oxidation resistance and melting loss resistance of plasma cladded Co06–Ni60A composite coating for coppery blast furnace tuyere. Journal of Iron and Steel Research International, 2025, 32: 1491-1501.

[26]  Chao Zhang, Jun Zhang, Shaowu Zhang, et al. An innovative interlayer improving the interfacial connection of FeCoNiCrTi coating on copper surface. Surface & Coatings Technology, 2024, 494: 131541.

[27]  Chao Zhang, Yuwen Zhang, Dongsheng Wang, et al. Temperature-copper content induced wear mechanism transition in Cu/Ni60A composites. Materials Today Communications, 2024, 40:109710.

[28]  Zhou Jie, Zhang Min*, Chai Linjiang, et al. Thermal softening mechanism of Ti-5Al-5Mo-5V-3Cr-1Fe metastable β Ti alloy deformed at low strain rate. Journal of alloys and compounds, 2025, 1039: 182994.

[29]  Zhang Jingyi, Zhang Min*, Chai Linjiang, et al. Laser-clad FeCoCrNiCu-TiC/SiC composite coatings on austenitic stainless steel: microstructure, hardness, and wear resistance. Applied Surface Science, 2025, 713: 164302.

[30]  Liu Yuanzhuo, Zhang Min*, Chai Linjiang*, et al. Laser cladding of CoCrNi-xTiB2 powders pre-placed on IN718 alloy: Surface microstructural characteristics and tribological performance. Surface & Coatings Technology, 2025, 515: 132617.

[31]  Jiaxue Zhang, Huishu Wu*, Zhangyu Zheng, et al. Reconstructing lithium-ion battery separators for enhanced safety: A multiscale perspective, Chemical Engineering Journal, 2025, 522: 167110.

[32]  Zhangyu Zheng, Wancheng Zhang, Qingyu Dai, Huishu Wu*, et al. Regulating the anionic environment of the COF@CNT composite for kinetics-boosted and wide-temperature lithium-sulfur batteries. Journal of Materials Chemistry A, 2025, 13, 26288.

[33]  Huishu Wu, Genzhe Shen, Runxia Li, et al. Influence of embedded reduced graphene oxide on the corrosion-wear performance of cold sprayed Zn-rGO/Al coating in NaCl solution. Surface and Coating Technology, 2022, 429: 127856.

[34]  Fan Wang, Yuqing Wang, Lili Zhang, et al. Synthesis of cellulose derivatives bearing regioselective bulky thiazolyl substituents at 2,3- and 6-positions for efficient fluorescence and UV–visible detection of Cu²⁺/Fe³⁺ ions. Carbohydrate Polymers, 2025, 369: 124339.

[35]  Fan Wang, Weiqi Wang, Yuqing Wang, et al. Synthesis of amylose and cellulose derivatives bearing bulky pendants for high-efficient chiral fluorescent sensing. Carbohydrate Polymers, 2023, 311: 120769.

[36]  Fan Wang, Weiqi Wang, Yuqing Wang, et al. Cellulose/amylose derivatives bearing bulky substituents as reversible fluorescent sensors for detection of Fe³⁺. Carbohydrate Polymers, 2023, 320: 121249.

[37]  Fan Wang, Junqi Pan, Guozhi Wu, et al. Preparation of CoS₂/FeS₂@NC nanorods served as anode material with high electrochemical performance for sodium-ion battery. Journal of Alloys and Compounds, 2025, 1014: 178762.

[38]  Kaikai Xu, Yadong Gong, Jibin Zhao. Microscale investigation of molten pool flow and microstructure evolution of Inconel 718 alloy during Solid-liquid transition. Journal of Manufacturing Processes, 2025, 134: 482-493.

[39]  Kaikai Xu, Yadong Gong, Jibin Zhao. Performance evaluation of GH3536/GH4169 functionally graded materials with linear gradient changes fabricated through direct energy deposition. Journal of Alloys and Compounds, 2024, 1004: 175934.

[40]  Ling Wanli, Wang Xiaoping, Gao Qiyu, et al. Toward developing remanufactured Ti6Al4V alloys with high fatigue crack growth resistance by in-situ cooling during laser remanufacturing. International Journal of Fatigue, 2024, 187: 108455.

[41]  Ling Wanli, Wang Xiaoping, Li Yue, et al. In-situ investigation on tensile deformation and fracture behaviors of inhomogeneous microstructure during laser repair of Ti-6Al-4 V titanium alloy. Engineering Fracture Mechanics, 2023, 291:109538.

[42]  Ling Wanli, Wang Xiaoping, Wang Leilei, et al. Defect formation mechanism of laser additive manufacturing joint for large-thickness Ti6Al4V titanium alloy with Y2O3 nanoparticles. Optics & Laser Technology, 2023, 157: 108648.

[43]  Zipan Chen, Beibei Guo, Huixian Zhang. Analysis of stress corrosion behaviour of TC4 titanium alloy in simulated seawater environment. International Journal of Microstructure and Materials Properties, 2024, 17: 134-150.

[44]  陈守东, 卢日环. 极薄带异步轧制滑移带演化的晶体塑性有限元分析[J]. 材料科学与工艺, 2024, 32(4): 85-94. (CSCD)

[45]  陈守东, 卢日环, 李杰, 孙建. 强剪切对单层晶极薄带轧制变形行为的影响[J]. 材料导报, 2024, 38(7): 147-154. (EI)

[46]  陈守东, 卢日环, 陈晨. 晶粒尺寸对竹节晶铜箔微轧制变形行为影响的模拟[J]. 中国有色金属学报, 2024, 34(3): 841-854. (EI)

[47]  陈守东,查辰宇,卢日环. 金属极薄带在锂离子电池中的应用与研究进展[J]. 材料导报,2023, 37(23): 22070289.EI

[48]  陈守东,卢日环,孙建,李杰. 异步冷轧少晶铜薄带局部变形的CP-FE模拟[J]. 材料导报, 2023, 37(14): 21120214.EI

[49]  陈守东,陈敬琪,李杰,孙建,卢日环. 复合成形轧制铜极薄带变形局部化的晶体塑性有限元模拟[J]. 材料导报, 2023, 37(2): 21050240.EI

[50]  陈守东,魏帅,孙文平,王银. 基于硬度和组织演化的含硼高速钢淬火工艺研究[J]. 铸造, 2022, 71(9): 1120-1126.

[51]  孙建,李景辉,黄贞益,章小峰,王东生,刘述庆一种低密度钢等温压缩时组织的演化和动态再结晶[J].材料研究学报,2024,38(10),768-781.

[52]  孙建,李景辉,黄贞益,章小峰,王东生,刘述庆,张龙时效处理对Fe-30.0Mn-9.6Al-1.0C低密度钢组织和性能影响[J]. 材料工程, 2024,52(12),122-133.

2.专利部分

[1] 陈晨;何敏;朱明阳;黄家锐. 一种Zn/Fe共掺杂SnO2超薄空心棱纳米笼超结构复合材料及其制备方法和应用, 发明专利,ZL 2024 1 1892735.X

[2] 陈峥.一种氨合成塔材料氢损伤声发射监测装置及其使用方法(acoustic emission monitoring apparatus for hydrogen damage of ammonia synthesis tower material , and use method therefor),国际发明专利(南非),2022/11616

[3] 陈峥.一种声发射监测氨合成塔材料的探头(probe for acoustic emission monitoring of ammonia synthesis tower material),国际发明(南非)专利,2022/11617

[4] 陈峥.一种无氧铜合金厚带材生产加工设备及其加工方法.发明专利,ZL 2025 1 0054309.7

[5] 秦镜; 曹艳燕; 胡铜生; 周晨; 王东生; 李珣; 付婷婷; 周吕川; 王勇; 张浩.一种晶粒织构协同控制的陶瓷覆铜板用无氧铜带及制法,发明专利,ZL202511059867.9

[6] 汪聃黄亮亮;王新福;郝刚领; 王伟国; 李先雨; 一种轻质、高强、高吸能多孔TWIP钢及其制备方法, 授权号: CN202311112052.3

[7] 王春明, 帅词俊, 杨友文. 一种生物医用非晶镁合金粉体、复合材料及制备工艺[P]. 2021.06, 授权号: ZL 2021107252728.

[8] 王春明, 曾路明. 一种生物医用钛-铜微球集合型微球粉体、生物医用钛-铜合金及制备工艺[P]. 2021.01. 授权号: ZL 2021100216684.

[9] 王春明, 谢佳鼎. 一种钛合金及制备方法[P]. 2023.07. 授权号: ZL 2023108241607.

[10] 吴惠舒, 詹浩芝, 张留艳, 吕晓, 罗军平, 揭晓华. 一种具有快速修复能力的锌基复合涂层及其制备方法和应用. 发明专利: ZL 201910319531.X, 2021-05-11.

[11] 王凡, 朱明阳, 陈晨, 黄家锐. 一种铁酸盐纳米笼超结构材料及其制备方法和应用. 发明专利: ZL 202411892480.7, 2025-06-20.

[12] 王凡, 陈晨, 黄家锐, 朱明阳. 一种Fe₂O₃纳米管/铁酸锌开放纳米笼超结构复合材料及其制备方法和应用. 发明专利: ZL 202411893043.7, 2025-06-20.

3.专著

[1] 秦镜, 《稀土钇微合金化高硅电工钢》, 合肥工业大学出版社, 978-7-5650- 6654-22024.

[2] 吴惠舒,AZ31镁合金表面冷喷涂石墨烯金属基复合涂层技术, 合肥工业大学出版社, 978-7-5650-7254-32025.

[3] 王东生、陈闻超.《增材制造技术》,合肥工业大学出版社,2025

4.科研获奖

[1] 王东生多能场协同激光增材再制造关键技术与复杂环境应用安徽省科技进步奖二等奖第一单位),2026

[2] 王东生陈闻超王松林. 3D打印用高性能铜合金粉末的制备及应用, 中国有色有色金属工业科学技术奖二等奖(第一单位),2025

[3] 柴林江, 章敏, 麻彦龙, 王威等. 重大装备关键部件用金属材料激光表面强化技术及产业化, 中国商业联合会科技进步奖二等奖第一单位),2025

[4] 王东生,陈峥. 易燃易爆石化高温设备多源损伤智能监测检测技术与装备中国仪器仪表学会科技进步奖二等奖(第一单位2025

[5] 王东生李赞松吴惠舒周妍陈闻超方骏章超多极端现场激光熔覆再制造关键技术、装备及其应用中国发明创业奖项目奖二等奖(第一单位),2025

[6] 钟云波,胡铜生,沈喆,丁彪,高海,周晨,陈峥.超细晶超低氧高均匀无氧铜材料制备及应用, 中国有色金属工业科技一等奖,2024

5.成果转化

[1] 陈晨, 国家发明专利转化, 20251027, 转化金额10万元

[2] 王凡, 国家发明专利转化, 20251027, 转化金额10万元.