Please wait a minute...
《材料导报》期刊社  2018, Vol. 32 Issue (1): 102-109    https://doi.org/10.11896/j.issn.1005-023X.2018.01.012
  物理   材料综述 |材料 |
镁合金超疏水表面的制备技术与应用研究进展
钱志强1,2,3(),吴志坚1,2(),王世栋1,2,张慧芳1,2,刘海宁1,2,叶秀深1,2,李权1,2
1 中国科学院青海盐湖研究所,西宁 810008
2 青海省盐湖资源化学重点实验室,西宁 810008
3 中国科学院大学,北京 100049
Research Progress in Preparation of Superhydrophobic Coatings on Magnesium Alloys and Its Application
Zhiqiang QIAN1,2,3(),Zhijian WU1,2(),Shidong WANG1,2,Huifang ZHANG1,2,Haining LIU1,2,Xiushen YE1,2,Quan LI1,2
1 Qinghai Institute of Salt Lakes, Chinese Academy of Science, Xining 810008
2 Key Laboratory of Salt Lake Resources Chemistry of Qinghai Province, Xining 810008
3 University of Chinese Academy of Science, Beijing 100049
下载:  全 文 ( PDF ) ( 1353KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 

通过制备镁合金超疏水表面,可以有效减少镁合金表面与腐蚀介质的直接接触,从而提高镁合金的耐腐蚀性和防腐涂层稳定性,有助于进一步扩大镁合金在工业等领域中的应用。在简要概述固体表面润湿性的影响因素和相关理论分析的基础上,综述了国内外镁合金超疏水表面制备技术与应用的最新进展,重点归纳了粗糙表面的构建方法,探讨了各种制备方法的特点,总结了镁合金超疏水表面防腐蚀的机理,并提出了镁合金超疏水表面研究的发展方向。

服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
钱志强
吴志坚
王世栋
张慧芳
刘海宁
叶秀深
李权
关键词:  超疏水表面  镁合金  构建    
Abstract: 

Superhydrophobic coatings on the surface of magnesium alloy can effectively reduce the direct contacting opportunity between the substrate surface and the corrosive medium. This kind of physicochemical effect can enhance the corrosion resistance property and increase the anti-corrosion coating stability, thereby potentiating the application of magnesium alloy in industrial and other fields. Based on a brief introduction to the influences of wettability and the fundamental theories, recent advances of the fabrication and application of super-hydrophobic surfaces on magnesium alloys are reviewed. Here we generalize different methods of constructing rough surface and relevant physicochemical characters, meanwhile the mechanism of superhydrophobic surface for anti-corrosion are concluded. Finally, the prospect of the development of super-hydrophobic surfaces on magnesium alloy is proposed.

Key words:  superhydrophobic surface    magnesium alloy    fabrication
出版日期:  2018-01-10      发布日期:  2018-01-10
ZTFLH:  TG178  
基金资助: 国家自然科学基金(21401209);青海省自然科学基金青年项目(2014-ZJ-934Q)
作者简介:  钱志强:男,1988年生,博士研究生,主要从事材料表面处理 E-mail: qzq_isl@hotmail.com
引用本文:    
钱志强,吴志坚,王世栋,张慧芳,刘海宁,叶秀深,李权. 镁合金超疏水表面的制备技术与应用研究进展[J]. 《材料导报》期刊社, 2018, 32(1): 102-109.
Zhiqiang QIAN,Zhijian WU,Shidong WANG,Huifang ZHANG,Haining LIU,Xiushen YE,Quan LI. Research Progress in Preparation of Superhydrophobic Coatings on Magnesium Alloys and Its Application. Materials Reports, 2018, 32(1): 102-109.
链接本文:  
https://www.mater-rep.com/CN/10.11896/j.issn.1005-023X.2018.01.012  或          https://www.mater-rep.com/CN/Y2018/V32/I1/102
  
[1] Huang Haijun, Han Qiuhua . The property and applications of magnesium and magnesium alloy Heat Treatment Technology and Equipment, 2010,31(3):6(in Chinese).
[1] 黄海军, 韩秋华 . 镁及镁合金的特性与应用[J]. 热处理技术与装备, 2010,31(3):6.
[2] Liu Jing’an, Xu He . Process technology developments and applications of magnesium alloy materials(1) Light Alloy Fabrication Technology, 2007,35(8):1(in Chinese).
[2] 刘静安, 徐河 . 镁合金材料的应用及其加工技术的发展(1)[J]. 轻合金加工技术, 2007,35(8):1.
[3] Chen Jun . Application analysis of magnesium alloy in automotive industry Materials Research and Application, 2010,4(2):81(in Chinese).
[3] 陈军 . 镁合金在汽车工业中的应用分析[J]. 材料研究与应用, 2010,4(2):81.
[4] Shi Wenfang, Zhou Kun . The application and outlook of magnesium alloy development in china Automobile Technology and Material, 2004,19(6):32(in Chinese).
[4] 史文方, 周昆 . 我国镁合金的开发应用现状及展望[J]. 汽车工艺与材料, 2004,19(6):32.
[5] Li Wei . Preparation and functional properties of superhydrophobic surfaces on magnesium alloy substrate[D]. Guangzhou: South China University of Technology, 2015(in Chinese).
[5] 李伟 . 镁合金基体上超疏水表面的制备及功能特性研究[D]. 广州:华南理工大学, 2015.
[6] Shen Jun, Gong Fubao, Zhang Tao , et al. Research progress of anti-corrosion of magnesium alloys surface Journal of Functional Material, 2014,45(17):17022(in Chinese).
[6] 沈骏, 龚福宝, 张涛 , 等. 镁合金表面防腐研究的前沿进展[J]. 功能材料, 2014,45(17):17022.
[7] Zhou Xuehua, Chen Qiurong, Wei Zhongling , et al. Chemical conversion coatings for magnesium alloys Corrosion and Protect, 2004,25(11):468(in Chinese).
[7] 周学华, 陈秋荣, 卫中领 , 等. 镁合金化学转化膜[J]. 腐蚀与防护, 2004,25(11):468.
[8] Guo J, Wang L P, Wang S C , et al. Preparation and performance of a novel multifunctional plasma electrolytic oxidation composite coating formed on magnesium alloy[J]. Journal of Material and Science, 2009,44(8):1998.
[9] Chang L R, Cao F H, Cai J S , et al. Influence of electric parameters on MAO of AZ91D magnesium alloy using alternative square-wave power source[J]. Transactions of Nonferrous Metals Society of China, 2011,21(2):307.
[10] ShiXi chang, Yang Huilan, Xiao Xiang , et al. Electroless nickel plating on AZ31 magnesium alloy surface Corrosion and Science Protect Technology, 2009,21(4):370(in Chinese).
[10] 石西昌, 杨慧兰, 肖湘 , 等. AZ31 镁合金表面化学镀镍工艺研究[J]. 腐蚀科学与防护技术, 2009,21(4):370.
[11] ZhangWei, Long Junfeng, Zhang Jin , et al. Study on the anticorrosive organic coating for magnesium alloy by silane pretreatment Surface Technology, 2009,38(6):51(in Chinese).
[11] 张微, 龙军峰, 张津 , 等. 硅烷增强镁合金防腐有机涂层的研究[J]. 表面技术, 2009,38(6):51.
[12] HeBailin, Liu Jing, Wan Diqing . Application of laser in processing of magnesium alloy Hot Working Technology, 2010,39(22):113(in Chinese).
[12] 何柏林, 刘菁, 万迪庆 . 激光在镁合金表面处理中的应用[J]. 热加工工艺, 2010,39(22):113.
[13] WolfeR C, Shaw B A . The effect of thermal treatment on the corrosion properties of vapor deposited magnesium alloyed with yttrium, aluminum, titanium, and misch metal[J]. Journal of Alloy and Compounds, 2007,437(1):157.
[14] WuY, Hang T, Yu Z , et al. Lotus leaf-like dual-scale silver film applied as a superhydrophobic and self-cleaning substrate[J]. Chemical Communications, 2014,50(61):8405.
[15] HuangY, Hu M, Yi S , et al. Preparation and characterization of silica/fluorinated acrylate copolymers hybrid films and the investigation of their icephobicity[J]. Thin Solid Films, 2012,520(17):5644.
[16] ZhangJ, Seeger S . Polyester materials with superwetting silicone nanofilaments for oil/water separation and selective oil absorption[J]. Advanced Functional Materials, 2011,21(24):4699.
[17] YuD, Tian J, Dai J , et al. Corrosion resistance of three-layer superhydrophobic composite coating on carbon steel in seawater[J]. Electrochimica Acta, 2013,97(5):409.
[18] FukudaK, Tokunaga J, Nobunaga T , et al. Frictional drag reduction with air lubricant over a super-water-repellent surface[J]. Journal of Marine Science and Technology, 2000,5(3):123.
[19] RobertJ. Contact angle, wetting, and adhesion: A critical review[J]. Journal of Adhesion Science and Technology, 1992,6(12):1269.
[20] BonnD, Eggers J, Indekeu J , et al. Wetting and spreading[J]. Reviews of Modern Physics, 2009,81(2):739.
[21] LiuK, Jiang L . Bio-inspired self-cleaning surfaces[J]. Annual Review of Materials Research, 2012,42(1):231.
[22] KotaA K, Kwon G, Choi W , et al. Hygro-responsive membranes for effective oil-water separation[J]. Nature Communications, 2012,3(48):19758.
[23] Young T . An essay on the cohesion of fluids[J]. Philosophical Transactions of the Royal Society of London, 1805,95:65.
[24] AndD ?, Mccarthy T J . Ultrahydrophobic surfaces. Effects of topography length scales on wettability[J]. Langmuir, 2000,16(20):7777.
[25] BuzaghA, Wolfram E . Bestimmung der haftf?higkeit von flüssigkeiten an festen k?rpern mit der abreiβwinkelmethode[J]. Kolloid-Zeitschrift, 1956,149(2-3):125.
[26] MasashiM, Akira N, Akira F , et al. Effects of the surface roughness on sliding angles of water droplets on superhydrophobic surfaces[J]. Langmuir, 2000,16(13):5754.
[27] Tian Jun, Xu Jinfeng, Xue Qunji . Hysteresis study of some fluorine polymer Polymer Material Science and Engineering, 1997,13(5):109(in Chinese).
[27] 田军, 徐锦芬, 薛群基 . 氟聚合物表面接触角滞后的研究[J]. 高分子材料科学与工程, 1997,13(5):109.
[28] OndaT, Shibuichi S, Satoh N , et al. Super-water-repellent fractal surfaces[J]. Langmuir, 1996,12(9):2125.
[29] Li Jie, , Preparation and characteristics of superhydrophobic surface on magnesium alloy and silicon substrate[D]. Dalian: Dalian Maritime University(in Chinese).
[29] 李杰 . 镁合金及硅基底超疏水表面的制备与性能研究[D]. 大连:大连海事大学, 2012.
[30] NishinoT, Meguro M, Nakamae K , et al. The lowest surface free energy based on-cf3 alignment[J]. Langmuir, 1999,15(13):4321.
[31] WenzelR N . Resistance of solid surfaces to wetting by water[J]. Industrial and Engineering Chemistry Research, 1936,28(8):988.
[32] CassieA B D, Baxter S . Wettability of porous surfaces[J]. Trans Faraday Soc, 1944,40:546.
[33] JaberJ A, Schlenoff J B . Recent developments in the properties and applications of polyelectrolyte multilayers[J]. Current Opinion in Colloid and Interface Science, 2006,11(6):324.
[34] WangY H, Wang W, Zhong L , et al. Super-hydrophobic surface on pure magnesium substrate by wet chemical method[J]. Applied Surface Science, 2010,256(12):3837.
[35] YinB, Fang L, Hu J , et al. Preparation and properties of super-hydrophobic coating on magnesium alloy[J]. Applied Surface Science, 2010,257(5):1666.
[36] WangJ, Li D D, Gao R , et al. Construction of superhydrophobic hydromagnesite films on the Mg alloy[J]. Materials Chemistry and Physics, 2011,129(1):154.
[37] YangN, Li J C, Bai N N , et al. One step phase separation process to fabricate superhydrophobic PVC films and its corrosion prevention for AZ91 Dmagnesium alloy[J]. Materials Science and Engineering B, 2016,209:1.
[38] WanP, Wu J, Tan L L , et al. Research on super-hydrophobic surface of biodegradable magnesium alloys used for vascular stents[J]. Materials Science and Engineering C, 2013,33(5):2885.
[39] WangL, Yang J Y, Zhu Y , et al. An environment-friendly fabrication of superhydrophobic surfaces on steel and magnesium alloy[J]. Materials Letters, 2016,171:297.
[40] WangZ W, Su Y L, Li Q , et al. Researching a highly anti-corrosion superhydrophobic film fabricated on AZ91 Dmagnesium alloy and its anti-bacteria adhesion effect[J]. Materials Characterization, 2015,99:200.
[41] WanH R, Hu X F . One-step solve-thermal process for the construction of anticorrosion bionic superhydrophobic surfaces on magnesium alloy[J]. Materials Letters, 2016,174:209.
[42] ZhouM, Pang X L, Wei L , et al. Insitu grown superhydrophobic Zn-Al layered double hydroxides films on magnesium alloy to improve corrosion properties[J]. Applied Surface Science, 2015,337:172.
[43] LiangM M, Wei Y H, Hou L F , et al. Fabrication of a super-hydrophobic surface on a magnesium alloy by a simple method[J]. Journal of Alloys and Compounds, 2016,656:311.
[44] JiaJ, Fan J F, Xu B S , et al. Microstructure and properties of the super-hydrophobic films fabricated on magnesium alloys[J]. Journal of Alloys and Compounds, 2013,554(2):142.
[45] LiJ H, Liu Q, Wang Y L , et al. Formation of a corrosion-resistant and anti-icing superhydrophobic surface on magnesium alloy via a single-step method[J]. Journal of the Electrochemical Society, 2016,163(5):62.
[46] SongJ L, Lu Y, Huang S , et al. A simple immersion approach for fabricating superhydrophobic Mg alloy surfaces[J]. Applied Surface Science, 2013,266(2):445.
[47] ZangD M, Zhu R W, Wu C X , et al. Fabrication of stable superhydrophobic surface with improved anticorrosion property on magnesium alloy[J]. Scripta Materialia, 2013,69(8):614.
[48] LiuQ, Kang Z X . One-step electrodeposition process to fabricate superhydrophobic surface with improved anticorrosion property on magnesium alloy[J]. Materials Letters, 2014,137:210.
[49] SheZ X, Li Q, Wang Z W , et al. Novel method for controllable fabrication of a superhydrophobic CuO surface on AZ91 Dmagnesium alloy[J]. ACS Applied Materials and Interfaces, 2012,4(8):4348.
[50] XuW J, Song J L, Jing S , et al. Rapid fabrication of large-area, corrosion-resistant superhydrophobic mg alloy surfaces[J]. ACS Applied Materials and Interfaces, 2011,3(11):4404.
[51] LiuQ, Chen D X, Kang Z X . One-step electrodeposition process to fabricate corrosion resistant superhydrophobic surface on magnesium alloy[J]. ACS Applied Materials and Interfaces, 2015,7(3):1859.
[52] WangZ W, Li Q . Low-cost and large-scale fabrication method for an environmentally-friendly superhydrophobic coating on magnesium alloy[J]. Journal of Materials Chemistry, 2012,22(9):4097.
[53] LiuY, Yao W G, Yin X M , et al. Controlling wettability for improved corrosion inhibition on magnesium alloy as biomedical implant materials[J]. Advanced Materials Interfaces, 2016,3(8):1500723.
[54] CuiX J, Lin X Z, Liu C H , et al. Fabrication and corrosion resistance of a hydrophobic micro-arc oxidation coating on AZ31 Mg alloy[J]. Corrosion Science, 2014,90:402.
[55] TakahiroI, Junko H, Naghiro S , et al. Corrosion resistance and chemical stability of super-hydrophobic film deposited on magnesium alloy AZ31 by microwave plasma-enhanced chemical vapor deposition[J]. Electrochimica Acta, 2010,55(23):7094.
[56] GoS, Kim Y, Ahn Y . Fabrication of superhydrophobic conical structures of polysiloxane on mg plates using an immersion process[J]. Bulletin of the Korean Chemical Society, 2013,34(5):1567.
[57] WangShaohua, Xie Yijun, Liu Lihua , et al. Preparation and characterization of superhydrophobic silica film on Mg-Nd-Zn-Zr magnesium alloy via sol-gel process Journal of Fudan University (Nature Science), 2012,51(2):190(in Chinese).
[57] 王少华, 谢益骏, 刘丽华 , 等. Mg-Nd-Zn-Zr镁合金表面超疏水SiO2薄膜的制备及其表征[J]. 复旦学报(自然学科报), 2012,51(2):190.
[58] ParkY, Ahn Y . Facile fabrication of polysiloxane nanorods on magnesium surface in the presence of 1,6-diphosphono-hexane to obtain a superhydrophobic surface[J]. Bulletin of the Korean Chemical Society, 2011,32(11):4063.
[59] FengL B, Zhu Y, Fan W , et al. Fabrication and corrosion resistance of superhydrophobic magnesium alloy[J]. Applied Physics A, 2015,120:561.
[60] QiuZ Z, Sun J, Wang R , et al. Magnet-induced fabrication of a superhydrophobic surface on ZK60 magnesium alloy[J]. Surface and Coatings Technology, 2015,286:246.
[61] ZhaoM, Wang X L, Song H , et al. Fabrication of a superhydrophobic phosphate/fatty-acid salt compound coating on magnesium alloy[J]. ECS Electrochemistry Letters, 2015,4(5):C19.
[62] ZhangJ Y, Kang Z X . Effect of different liquid-solid contact models on the corrosion resistance of superhydrophobic magnesium surfaces[J]. Corrosion Science, 2014,87:452.
[63] WangZ W, Li Q, She Z X , et al. Facile and fast fabrication of superhydrophobic surface on magnesium alloy[J]. Applied Surface Science, 2013,271(271):182.
[64] ZhangF, Zhang C L, Song L , et al. Fabrication of the superhydrophobic surface on magnesium alloy and its corrosion resistance[J]. Journal of Materials Science and Technology, 2015,31(11):1139.
[65] HanM, Go S, Ahn Y , et al. Fabrication of superhydrophobic surface on magnesium substrate by chemical etching[J]. Bulletin of the Korean Chemical Society, 2012,33(4):1363.
[66] LiuY, Yin X M, Zhang J J , et al. A electro-deposition process for fabrication of biomimeticsuper-hydrophobic surface and its corrosion resistance on magnesium alloy[J]. Electrochimica Acta, 2014,125:395.
[67] GuC D, Yan W, Zhang J L , et al. Corrosion resistance of AZ31 Bmagnesium alloy with a conversion coating produced from a choline chloride-urea based deep eutectic solvent[J]. Corrosion Science, 2016,106:108.
[68] SheZ X, Li Q, Wang Z W , et al. Highly anticorrosion, self-cleaning superhydrophobic Ni-Co surface fabricated on AZ91 Dmagnesium alloy[J]. Surface and Coatings Technology, 2014,251(29):7.
[69] LiW, Kang Z X . Fabrication of corrosion resistant superhydrophobic surface with self-cleaning property on magnesium alloy and its mechanical stability[J]. Surface and Coating Technology, 2014,253:205.
[70] TakahiroI, Naobumi S . Rapid formation of a superhydrophobic surface on a magnesium alloy coated with a cerium oxide film by a simple immersion process at room temperature and its chemical stability[J]. Langmuir, 2010,26(12):9749.
[71] WangJ, Li D D, Qi L , et al. Fabrication of hydrophobic surface with hierarchical structure on Mg alloy and its corrosion resistance[J]. Electrochimica Acta, 2010,55(22):6897.
[72] ZangD M, Zhu R W, Zhang W , et al. Corrosion-resistant superhydrophobic coatings on Mg alloy surfaces inspired by lotus seedpod[J]. Advance Functional Materials, 2017,27(8):1605446.
[73] ZhuJ Y, Wan H R, Hu X F . A rapid one-step process for the construction of corrosion-resistant bionic superhydrophobic surfaces[J]. Progress in Organic Coatings, 2016,100:56.
[1] 凌子涵, 王利卿, 张震, 赵占勇, 白培康. 镁合金电弧增材技术基本工艺及工艺因素影响综述[J]. 材料导报, 2024, 38(7): 22090013-9.
[2] 黄勇, 李俊越, 张栋葛, 韩津春, 郁崇文, 俞建勇, 丁彬, 李召岭. 化纤织物疏水疏油功能整理的发展概况[J]. 材料导报, 2024, 38(4): 22090167-14.
[3] 卢慧扬, 林金保, 刘惠民, 王炳权, 李一豪, 陈巽. 镁合金轧制边裂损伤模型的研究进展[J]. 材料导报, 2024, 38(24): 23110051-8.
[4] 钟丽萍, 路迢迢, 孙林超, 张梅, 王亮亮, 王永建. 镁合金多向锻造技术的研究现状与展望[J]. 材料导报, 2024, 38(23): 23070200-11.
[5] 夏二立, 叶拓, 邱飒蔚, 郭鹏程, 吴远志, 李落星. 不同加载路径和应变速率下挤压Mg-8.0Al-0.1Mn镁合金的力学响应行为[J]. 材料导报, 2024, 38(22): 24060132-8.
[6] 叶拓, 邱飒蔚, 夏二立, 郭鹏程, 吴远志, 李落星. 不同加载路径下挤压WE43镁合金的高速冲击力学响应及本构模型[J]. 材料导报, 2024, 38(20): 24050146-9.
[7] 张娜娜, 李全安, 陈晓亚, 陈培军, 谭劲峰. 高性能镁合金轧制成形研究进展[J]. 材料导报, 2024, 38(2): 22080125-9.
[8] 任东亭, 王文权, 张新戈, 杜文博, 朱胜. 镁合金基体超音速等离子喷涂Al-Al2O3复合涂层组织与耐腐蚀性能研究[J]. 材料导报, 2024, 38(16): 22120140-7.
[9] 程春龙, 陈正, 陈长玖, 柳力晨, 乐启炽. 镁合金表面高温氧化膜CO2矿化处理研究[J]. 材料导报, 2024, 38(16): 23040159-6.
[10] 计鸿鑫, 任伟杰, 蒋先贤, 杜文宇, 孙静娜, 黄华贵. 镁合金板材弯曲回弹预测与控制研究进展[J]. 材料导报, 2024, 38(15): 23080183-7.
[11] 叶拓, 邱飒蔚, 夏二立, 郭鹏程, 吴远志, 李落星. 动态冲击载荷下7003铝合金的力学响应行为及力学本构建模[J]. 材料导报, 2024, 38(13): 24010026-8.
[12] 肖雯心, 王叶, 马凯, 代朝能, 裴三略, 王丹芊, 王敬丰. 镁合金表面化学转化涂层研究进展[J]. 材料导报, 2024, 38(12): 23010121-12.
[13] 龙飞, 刘瞿, 朱艺星, 周梦然, 陈高强, 史清宇. 搅拌摩擦加工调控Mg-5Zn-0.6Zr合金耐蚀性的研究[J]. 材料导报, 2024, 38(10): 23020077-6.
[14] 安凌云, 常成功, 康迪菘, 王钊, 孟雷超, 彭建洪. 镁合金微弧氧化膜在三种饱和盐溶液中的耐蚀性研究[J]. 材料导报, 2023, 37(7): 21070250-10.
[15] 谭钦文, 邓黎鹏, 易润华, 程东海, 李东阳. Ni中间层镁/钛异种材料电阻点焊接头组织与性能[J]. 材料导报, 2023, 37(7): 21090077-4.
[1] Huanchun WU, Fei XUE, Chengtao LI, Kewei FANG, Bin YANG, Xiping SONG. Fatigue Crack Initiation Behaviors of Nuclear Power Plant Main Pipe Stainless Steel in Water with High Temperature and High Pressure[J]. Materials Reports, 2018, 32(3): 373 -377 .
[2] Miaomiao ZHANG,Xuyan LIU,Wei QIAN. Research Development of Polypyrrole Electrode Materials in Supercapacitors[J]. Materials Reports, 2018, 32(3): 378 -383 .
[3] Congshuo ZHAO,Zhiguo XING,Haidou WANG,Guolu LI,Zhe LIU. Advances in Laser Cladding on the Surface of Iron Carbon Alloy Matrix[J]. Materials Reports, 2018, 32(3): 418 -426 .
[4] Huaibin DONG,Changqing LI,Xiahui ZOU. Research Progress of Orientation and Alignment of Carbon Nanotubes in Polymer Implemented by Applying Electric Field[J]. Materials Reports, 2018, 32(3): 427 -433 .
[5] Xiaoyu ZHANG,Min XU,Shengzhu CAO. Research Progress on Interfacial Modification of Diamond/Copper Composites with High Thermal Conductivity[J]. Materials Reports, 2018, 32(3): 443 -452 .
[6] Anmin LI,Junzuo SHI,Mingkuan XIE. Research Progress on Mechanical Properties of High Entropy Alloys[J]. Materials Reports, 2018, 32(3): 461 -466 .
[7] Qingqing DING,Qian YU,Jixue LI,Ze ZHANG. Research Progresses of Rhenium Effect in Nickel Based Superalloys[J]. Materials Reports, 2018, 32(1): 110 -115 .
[8] Yaxiong GUO,Qibin LIU,Xiaojuan SHANG,Peng XU,Fang ZHOU. Structure and Phase Transition in CoCrFeNi-M High-entropy Alloys Systems[J]. Materials Reports, 2018, 32(1): 122 -127 .
[9] Changsai LIU,Yujiang WANG,Zhongqi SHENG,Shicheng WEI,Yi LIANG,Yuebin LI,Bo WANG. State-of-arts and Perspectives of Crankshaft Repair and Remanufacture[J]. Materials Reports, 2018, 32(1): 141 -148 .
[10] Xia WANG,Liping AN,Xiaotao ZHANG,Ximing WANG. Progress in Application of Porous Materials in VOCs Adsorption During Wood Drying[J]. Materials Reports, 2018, 32(1): 93 -101 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed