Design and Application of Multifunctional Infrared Stealth Materials

Sike Yu, Yan Bao, Lu Gao, Wenbo Zhang

Prog Chem ›› 2024, Vol. 36 ›› Issue (9) : 1349-1362.

PDF(32752 KB)
Home Journals Progress in Chemistry
Progress in Chemistry

Abbreviation (ISO4): Prog Chem      Editor in chief: Jincai ZHAO

About  /  Aim & scope  /  Editorial board  /  Indexed  /  Contact  / 
PDF(32752 KB)
Prog Chem ›› 2024, Vol. 36 ›› Issue (9) : 1349-1362. DOI: 10.7536/PC240126
Review

Design and Application of Multifunctional Infrared Stealth Materials

Author information +
History +

Abstract

the rapid development of infrared detection equipment has caused a huge threat to military equipment.and infrared stealth technology is an important way to improve the survival,strike and breakthrough capabilities of military equipment,and plays a vital role In the development of the national defense industry.However,the battlefield environment is complex and changeable,and materials with only infrared stealth performance are difficult to meet the actual needs when facing radar detection,rainforest,mountain,ocean,desert and other environments.Therefore,it is imperative to develop multifunctional infrared stealth materials.in this paper,the latest research progress of different infrared stealth materials is reviewed from the perspective of the mechanism of infrared stealth materials,such as low emissivity materials,temperature control materials,variable emissivity materials and cooperative working mode materials,and the control methods of different infrared stealth materials are discussed.Secondly,the multi-functional infrared stealth materials suitable for different application scenarios,such as multi-band stealth,electromagnetic shielding,antibacterial and waterproof,high temperature resistance,anti-corrosion and flame retardant infrared stealth materials,and their design mechanisms are discussed.Finally,the future development of multifunctional infrared stealth materials is summarized and prospected。

Contents

1 Introduction

2 Infrared stealth mechanisms

3 Selection and performance control of infrared stealth materials

3.1 Low emissivity materials

3.2 Temperature-controlled materials

3.3 Variable emissivity materials

3.4 Collaborative work mode materials

4 Design and application of multifunctional infrared stealth materials

4.1 Multi-band stealth

4.2 Electromagnetic shielding

4.3 Antibacterial and waterproof properties

4.4 High temperature resistance

4.5 Flame retardant properties

4.6 Anti-corrosion properties

5 Conclusion and outlook

Key words

infrared stealth / multifunction / dynamic adaptive materials / collaborative work model materials / multi-band compatible stealth

Cite this article

Download Citations
Sike Yu , Yan Bao , Lu Gao , et al. Design and Application of Multifunctional Infrared Stealth Materials[J]. Progress in Chemistry. 2024, 36(9): 1349-1362 https://doi.org/10.7536/PC240126

References

[1]
Wang A F, Zhang F F, Jing Z Y, Jiang X T, Xin H. China Dyeing & Finishing, 2022, 48(12): 74.
(王万安, 张飞飞, 景卓元, 姜孝天, 辛昊. 印染, 2022, 48(12): 74.).
[2]
Tian C H, Cai M, Wang B K, Fan Q, Yang B Y, Wang W Y, Qu S B. J. Air Force Eng. Univ. Nat. Sci. Ed., 2013, 14(4): 81.
(田昌会, 蔡明, 王斌科, 范琦, 杨百愚, 王伟宇, 屈绍波. 空军工程大学学报(自然科学版), 2013, 14(4): 81.).
[3]
Li B. Chin. Opt., 2013, 6(6): 818.
(李波. 中国光学, 2013, 6(6): 818.)
[4]
Wu X Y. Doctoral Dissertation of University of Electronic Science and Technology of China, 2021.
(巫雪玉. 电子科技大学博士论文, 2021).
[5]
Dalapati G K, Kushwaha A K, Sharma M, Suresh V, Shannigrahi S, Zhuk S, Masudy-Panah S. Prog. Mater. Sci., 2018, 95: 42.
[6]
Fang K Y, Fang F. Mater. Lett., 2018, 230: 279.
[7]
Liu C M, Lyu J, Shi N, Cheng Q Q, Liu Z W, Xiong Y B, Zhang X T. Chem. Eng. J., 2023, 462: 142249.
[8]
Wang S, Sun Z Y. Knitting Industries, 2020, (5): 40.
(王硕, 孙志一. 针织工业, 2020, (5): 40.)
[9]
Wang T Y, Bian J T, Li X, Kong H, Sun X Q. Chin. J. Lasers, 2021, 48 (04): 269.
(王田宇, 卞进田, 李欣, 孔辉, 孙晓泉. 中国激光, 2021, 48 (04): 269.).
[10]
Yan X X. Coatings, 2019, 9(10): 597.
[11]
Zhao X R, Liu C Y, Xu C, Xu G Y, Zhang Y T, Tan S J, Han Y. Infrared Phys. Technol., 2018, 92: 454.
[12]
Zhang M, Li M, Yan Z K, Zhang L, Yin J H, Ma X D, Li W J, Deng L J. Appl. Surf. Sci., 2022, 604: 154626.
[13]
Qin Y S, Zhang M J, Guan Y, Huang X G. Ceram. Int., 2019, 45(11): 14312.
[14]
Xu Y, Wan G P, Ma L L, Zhang Y, Su Y R, Liu D S, Wang G Z. J. Mater. Chem. C, 2023, 11(5): 1754.
[15]
Wang H, Ma Y Y, Qiu J, Wang J, Zhang H, Li Y X, Wang C. ACS Appl. Nano Mater., 2022, 5(1): 782.
[16]
Meer S, Kausar A, Iqbal T. Polym. Plast. Technol. Eng., 2016, 55(13): 1416.
[17]
Zhou X, Xin B J, Chen Z M, Peng X X, Zhuo T T, Yu J. Polym. Bull, 2022, 79(9):7555.
[18]
Gu W H, Ong S J H, Shen Y H, Guo W Y, Fang Y T, Ji G B, Xu Z J. Adv. Sci., 2022, 9(35): 2204165.
[19]
Haciismailoglu M, Vatansever D, Alper M. Chem. Pap., 2024, 78(5): 3315.
[20]
Ju C B, Wang Y S, He D W, Dong X, Liang Y, Song P, Fu M. Chin. J. Lumin., 2011, 32(10): 998.
[21]
Jiang W J. Dissertation of Donghua University, 2016.
(江文杰. 东华大学硕士论文, 2016.) .
[22]
Liu Z H, Ban G D, Ye S T, Liu W Y, Liu N, Tao R. Opt. Mater. Express, 2016, 6(12): 3716.
[23]
Sun R, He X K, Gao M, Huang Z, Wei N Y. China Coatings, 2016, 31(06):59.
(孙瑞, 何效凯, 高萌, 黄震, 魏乃影. 中国涂料, 2016, 31(06): 59.).
[24]
Xia J Y. Infrared Technology, 1988, 10(1): 10.
(夏继余. 红外技术, 1988, 10(1): 10.).
[25]
Larciprete M C, Paoloni S, Orazi N, Mercuri F, Orth M, Gloy Y, Centini M, Voti R L, Sibilia C. Int. J. Therm. Sci., 2019, 146: 106109.
[26]
Chai X, Zhu D M, Chen Q, Qing Y C, Cao K, Luo F, Huang Z B, Li P, Liu X H. Adv. Compos. Hybrid Mater., 2022, 5(4): 3094.
[27]
Meng Z, Li G D, Cui G Z, Wang Y, Liu D Q. Materials Reports, 2023, 37(21): 5.
(孟真, 李广德, 崔光振, 王义, 刘东青. 材料导报, 2023, 37(21): 5.).
[28]
Zhang J K, Liu R H, Zhao D P, Wang H, Zhang Y Q, Wang C M, Shi J M. Opt. Mater. Express, 2018, 9(1): 195.
[29]
Miao L, Shi J M, Wang J C, Zhao D P, Chen Z S, Wang Q C. Opt. Eng, 2016, 55(5): 057101.
[30]
Ramanujam N R, Joseph Wilson K S. Opt. Commun., 2016, 368: 174.
[31]
Dai X Y, Xiang Y J, Wen S C. Prog. Electromagn. Res., 2011, 120: 17.
[32]
Lu Y, Bu X H, Li D X, Liu F Y, Zhang Z W. Laser Optoelectron P. 2019, 56(08): 32.
(卢仪, 卜小海, 李栋先, 刘飞佑, 张泽武. 激光与光电子学进展, 2019, 56(08): 32.).
[33]
Qi D, Wang X, Cheng Y Z, Gong R Z, Li B W. Opt. Mater., 2016, 62: 52.
[34]
Bao Y, Guo R Y, Kang Q L, Liu C, Zhang W B, Zhu Q. Ceram. Int., 2021, 47(17): 24597.
[35]
Bao Y, Guo R Y, Ma J Z. ACS Appl. Mater. Interfaces, 2020, 12(21): 24250.
[36]
Bao Y, Kang Q L, Ma J Z, Liu C. Ceram. Int., 2017, 43(12): 8596.
[37]
Bao Y, Kang Q L, Ma J Z. Colloids Surf. A Physicochem. Eng. Aspects, 2018, 537: 69.
[38]
Liang W H, Wu J T, Zhang S, Zhao P Y, Cong Y, Guo Y Q, Wang G S. Nano Res., 2024, 17(3): 2070.
[39]
Hu F, Wu S, Sun Y. Adv. Mater., 2019, 31(38): 1801001.
[40]
Shi T, Zheng Z H, Liu H, Wu D Z, Wang X D. Compos. Sci. Technol., 2022, 217: 109127.
[41]
Cheng H R, Pan Y M, Wang X, Liu C T, Shen C Y, Schubert D W, Guo Z H, Liu X H. Nano Micro Lett., 2022, 14(1): 63.
[42]
Serrano-Jiménez A, Díaz-López C, Verichev K, Barrios-Padura Á. Energy Build., 2023, 278: 112595.
[43]
Liu J, Zhang H B, Xie X, Yang R, Liu Z S, Liu Y F, Yu Z Z. Small, 2018, 14(45): 1802479.
[44]
Zhang R Y, Kim E S, Romero-Diez S, Wang Y X, Huang G, Li K, Yang Y, Lee P C. Chem. Eng. J., 2022, 431: 133490.
[45]
Wang Y H, Luo X N, Li Q, Wang W L, Du Q L, Yang H, Qiu L J, Zhang Z, Shen J. J. Sol Gel Sci. Technol., 2023, 106(2): 341.
[46]
Chen L M, Rende D, Schadler L S, Ozisik R. J. Mater. Chem. A, 2013, 1(12): 3837.
[47]
Jing J, Liu H, Wang X. Adv. Funct. Mater., 2023, 2309269.
[48]
Plyushch A, Zhai T L, Xia H S, Santillo C, Verdolotti L, Lavorgna M, Kuzhir P. Materials, 2019, 12(2): 213.
[49]
Ma W L, Liu X Y, Qiu Z R, Cai Z H, Diao J L, Huang Y. Carbon, 2022, 196: 913.
[50]
Cheng H R, Pan Y M, Wang X, Liu C T, Shen C Y, Schubert D W, Guo Z H, Liu X H. Nano Micro Lett., 2022, 14(1): 63.
[51]
Gu W H, Tan J W, Chen J B, Zhang Z, Zhao Y, Yu J W, Ji G B. ACS Appl. Mater. Interfaces, 2020, 12(25): 28727.
[52]
Zheng R X, Cheng Y, Jiang X, Lin T, Chen W, Deng G F, Miras H N, Song Y F. ACS Appl. Mater. Interfaces, 2022, 14(23): 27214.
[53]
Yue X J, Zhang T, Yang D Y, Qiu F X, Li Z D, Wei G Y, Qiao Y. J. Colloid Interface Sci., 2019, 535: 363.
[54]
Apostolopoulou-Kalkavoura V, Munier P, Bergström L. Adv. Mater., 2021, 33(28): 2001839.
[55]
Ye X Y. Doctoral Dissertation of Lanzhou University of Technology, 2022.
(叶星云. 兰州理工大学硕士论文, 2022).
[56]
Rao Z H, Wang S F, Zhang Y L, Peng F F, Cai S H. Acta Physica Sinica, 2013, 62(5): 331.
(饶中浩, 汪双凤, 张艳来, 彭飞飞, 蔡颂恒. 物理学报, 2013, 62(5): 331.).
[57]
Wu Y F. Doctoral Dissertation of University of Science and Technology of China, 2014.
(吴燕飞. 中国科学技术大学博士论文, 2014).
[58]
Bao Y, Guo R Y, Ge X, Zhang W B, Liu C, Xie M S. Prog. Org. Coat., 2023, 180: 107574.
[59]
Zhao S W, Tao Y, Chen Y X, Zhou Y J, Li R, Xie L L, Huang A B, Jin P, Ji S D. ACS Appl. Mater. Interfaces, 2019, 11(10): 10254.
[60]
Sun H H, Lei X Y, Yuan X Q, Jiang P, Zhang W, Zhang L Z. Transactions of Materials and Heat Treatment, 2023, 1.
(孙恒辉, 雷心瑜, 袁新强, 蒋鹏, 张伟, 张立斋. 材料热处理学报, 2023, 1.).
[61]
Ji H N, Liu D Q, Zhang C Y, Cheng H F. Sol. Energy Mater. Sol. Cells, 2018, 176: 1.
[62]
Sheng N, Zhu C Y, Sakai H, Akiyama T, Nomura T. Sol. Energy Mater. Sol. Cells, 2019, 191: 141.
[63]
Zhou Y C, Yang J, Bai L, Bao R Y, Yang M B, Yang W. Chem. Eng. J., 2022, 446: 137463.
[64]
Wang X G, Liu S C, Lei W Y, Zhang C Y. Materials Reports, 2023, 36(24): 21090229-5.
(王信刚, 刘世成, 雷为愉, 张晨阳. 材料导报, 2023, 36(24): 21090229-5.)
[65]
Niu J L, Wang Y, Zou X L, Tan Y, Jia C Y, Weng X L, Deng L J. Appl. Mater. Today, 2021, 24: 101073.
[66]
Salihoglu O, Uzlu H B, Yakar O, Aas S, Balci O, Kakenov N, Balci S, Olcum S, Süzer S, Kocabas C. Nano Lett., 2018, 18(7): 4541.
[67]
Chen Z L, Yang K, Xian T F, Kocabas C, Morozov S V, Castro Neto A H, Novoselov K S, Andreeva D V, Koperski M. ACS Appl. Mater. Interfaces, 2021, 13(23): 27278.
[68]
Sun Y, Chang H C, Hu J, Wang Y Y, Weng Y D, Zhang C, Niu S, Cao L F, Chen Z, Guo N, Liu J K, Chi J W, Li G H, Xiao L. Adv. Opt. Mater., 2021, 9(3): 2001216.
[69]
Lang F P, Wang H, Zhang S J, Liu J B, Yan H. Int. J. Thermophys., 2017, 39(1): 6.
[70]
Fang K Y, Wang Y J, Zhao Y C, Fang F. Compos. Sci. Technol., 2021, 201: 108483.
[71]
Wu X Y, Yuan L, Weng X L, Qi L, Wei B, He W T. Nano Lett., 2021, 21(9): 3908.
[72]
Liu J W, Wang J J, Zhao F, Xu B C. Chem. J. Chin. Univ., 2017, 38(6): 929.
(刘嘉玮, 王建江, 赵芳, 许宝才. 高等学校化学学报, 2017, 38(6): 929.).
[73]
Xu R, Wang W, Yu D. Compos. Struct., 2019, 212: 58.
[74]
Han Z K, Shen Y L, Li C H, Chen R, Li J, Guo S Y. Compos. Sci. Technol., 2023, 241: 110150.
[75]
Gu J, Wang W, Yu D. Colloids Surf. A Physicochem. Eng. Aspects, 2022, 653: 129966.
[76]
Ding D W, He X P, Liang S J, Wei W J, Ding S J. ACS Appl. Mater. Interfaces, 2022, 14(21): 24690.
[77]
Chen J Y, Zhang S X, Wei Y H, Yi J, Pang W T, Zhang H Y, Fu Y H, Li C J, Xia W L, Xiong C X. Compos. Sci. Technol., 2023, 233: 109920.
[78]
Guo T C. Doctoral Dissertation of Nanjing University of Aeronautics and Astronautics, 2023.
(郭腾超. 南京航空航天大学博士论文, 2023).
[79]
Fan Q, Zhang L G, Xing H L, Wang H, Ji X L. J. Mater. Sci. Mater. Electron., 2020, 31(4): 3005.
[80]
Duan Y P, Lei H, Huang L X, Ma X R, Yang X, Sun X Y, Ma B. Adv. Eng. Mater., 2022, 24(9):2200127.
[81]
Huang Q Q, Wang Z D, Zhao Y, Wu Y, Tang S L, Ji G B. Compos. Commun., 2022, 35: 101349.
[82]
Chen X T, Wang Z D, Zhou M, Zhao Y, Tang S L, Ji G B. Chem. Eng. J., 2023, 452: 139110.
[83]
Shi T, Zheng Z H, Liu H, Wu D Z, Wang X D. Nanomaterials, 2021, 11(11): 3038.
[84]
Wu Y, Zhao Y, Zhou M, Tan S J, Peymanfar R, Aslibeiki B, Ji G B. Nano Micro Lett., 2022, 14(1): 171.
[85]
Gu W H, Ong S J H, Shen Y H, Guo W Y, Fang Y T, Ji G B, Xu Z J. Adv. Sci., 2022, 9(35): 2204165.
[86]
Ma W J, Tang C H, He P, Wu X H, Cui Z K, Lin S L, Liu X Y, Zhuang Q X. ACS Appl. Mater. Interfaces, 2022, 14(30): 34985.
[87]
Chang I, Kim T, Lee N, Nam J, Lim J S, Yun M, Cho H H. ACS Appl. Mater. Interfaces, 2022, 14(24): 28337.
[88]
Kim J, Park C, Hahn J. Adv. Opt. Mater., 2022, 10(6): 2101930.
[89]
Qiao M T, Tian Y R, Li J X, He X W, Lei X F, Zhang Q Y, Ma M L, Meng X R. J. Colloid Interface Sci., 2022, 609: 330.
[90]
Chai X, Zhu D M, Liu Y, Qing Y C, Luo F, Huang Z B, Li P, Chen Q. J. Colloid Interface Sci., 2023, 645: 570.
[91]
Shi H G, Zhao H B, Liu B W, Wang Y Z. ACS Appl. Mater. Interfaces, 2021, 13(22): 26505.
[92]
Wen C Y, Zhao B, Liu Y H, Xu C Y, Wu Y Y, Cheng Y F, Liu J W, Liu Y X, Yang Y X, Pan H G, Zhang J C, Wu L M, Che R C. Adv. Funct. Mater., 2023, 33(20): 2214223.
[93]
Ye X Y, Chen Y, Yang J, Yang H Y, Wang D W, Xu B B, Ren J N, Sridhar D, Guo Z H, Shi Z J. Adv. Compos. Hybrid Mater., 2023, 6(3): 106.
[94]
Guo T C, Tan S J, Xu G Y, Ma J H, Liu X Y, Ji G B, Liu G S, He Y F, Zhang S T. Ceram. Int., 2020, 46(2): 1569.
[95]
Wang L, Eldridge J I, Guo S M. Acta Mater., 2014, 64: 402.
[96]
Li E B, Bai Y, Dong H Y, Jia R L, Zhao X P, Wang R J, Bao M Y, Ma W. Ceram. Int., 2021, 47(16): 23124.
[97]
Youh M J, Huang Y R, Peng C H, Lin M H, Chen T Y, Chen C Y, Liu Y M, Pu N W, Liu B Y, Chou C H, Hou K H, Ger M D. Nanomaterials, 2021, 11(6): 1603.
[98]
Jiang F W, Zhao W J, Wu Y M, Dong J D, Zhou K H, Lu G M, Pu J B. Prog. Org. Coat., 2019, 127: 70.
[99]
Wang X L, Tang Y, Wang Y P, Ke L, Ye X X, Huang X, Shi B. Chem. Eng. Sci., 2019, 196: 64.
[100]
Li S L, Wang J, Zhao H B, Cheng J B, Zhang A N, Wang T, Cao M, Fu T, Wang Y Z. ACS Appl. Mater. Interfaces, 2021, 13(49): 59231.
[101]
Zhang Y H, Shen G D, Lam S S, Ansar S, Jung S C, Ge S B, Hou L, Fan Z K, Wang F, Fan W. Chem. Eng. J., 2023, 471: 144679.
[102]
Cesare C. Nature, 2015, 524(7563): 18.

Funding

National Natural Science Foundation of China(22378253)
National Natural Science Foundation of China(22078188)
Natural Science Basic Research Program of Shaanxi(2024JC-YBMS-122)
Xianyang Scientific and Technological Projects(2021ZDZX-GY-0007)
PDF(32752 KB)

Accesses

Citation

Detail

Sections
Recommended

/