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Progress in Chemistry 2018, Vol. 30 Issue (2/3): 295-303 DOI: 10.7536/PC170738 Previous Articles   Next Articles

• Review •

Layered Double Hydroxides/Polymer Nanocomposites

Lu Jia1,2,3, Jianzhong Ma1,2,3*, Dangge Gao1,2,3*, Bin Lv1,2,3   

  1. 1. College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science & Technology, Xi'an 710021, China;
    2. Key Laboratory of Leather Cleaner Production, China National Light Industry, Xi'an 710021, China;
    3. State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing 100029, China
  • Received: Revised: Online: Published:
  • Supported by:
    The work was supported by the State Key Laboratory of Chemical Resource Engineering(No.CRE-2017-C-106) and the Scientific Research Group Building Program of Shaanxi University of Science and Technology(No.TD12-03).
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Layered double hydroxides(LDH) are a class of ionic lamellar compounds made up of positively charged layered hydroxides with an interlayer region containing charge compensating anions. LDH can be introduced as precursor into polymer matrix to prepare LDH/polymer nanocomposites. The properties of the polymer matrix can be strengthened as the addition of LDH, and nanocomposites have shown excellent performances and development potentials in many fields. In this paper, the preparation methods of LDH/polymer nanocomposites are reviewed, such as blending, intercalation, in-situ, exfoliation/adsorption, layer-by-layer(LBL) assembly. Then the applications of the LDH/polymer nanocomposites are also summarized, such as flame retardant, gas barrier, infrared absorption, controlled release, adsorption. Finally, development trends of research direction and research field of the LDH/polymer nanocomposites are prospected.
Contents
1 Introduction
2 Structure and properties of LDH
2.1 Structure of LDH
2.2 Properties of LDH
3 Preparation methods of LDH/polymer nanocomposite
3.1 Blending method
3.2 Intercalation method
3.3 In-situ method
3.4 Exfoliation/adsorption method
3.5 Reconstruction method
3.6 Layer-by-layer(LbL) assembly
3.7 Spin-coating method
4 The applications of LDH/polymer nanocomposite
4.1 Flame retardant material
4.2 Ultraviolet and infrared absorption material
4.3 Biomedical material
4.4 Water treatment material
4.5 Gas barrier material
4.6 Luminescent material
4.7 Energy storage materials
5 Conclusion

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[1] 赵维(Zhao W), 齐暑华(Qi S H). 涂料工业(Paint & Coatings Industry), 2008, 38(2):43.
[2] Rives V. Layered Double Hydroxides Present and Future. NY:Nova Science Publishers Inc, 2001. 23.
[3] Vaccari A. Catal. Today, 1998, 41:53.
[4] Khan A I, Ragavan A, Fong B, Markland C, O' Brien M, Dunbar T G, Williams G R, O'Hare D. Ind. Eng. Chem. Res., 2009, 48:10196.
[5] Benito P, Herrero M, Labajos F M, Rives V. Appl. Clay Sci., 2010, 48:218.
[6] Yu J, Wang Q, O' Hare D, Sun L. Chem. Soc. Rev., 2017, 46:5950.
[7] 杨杰(Yang J), 谢光银(Xie G Y). 合成纤维(Synthetic Fiber in China), 2014, 43(6):41.
[8] McKenzie A L, Fishel C T, Davis R J. J. Catal., 1992, 138:547.
[9] 任玲玲(Ren L L), 何静(He J), 段雪(Duan X). 化学通报(Chemistry Bulletin), 2001, 64:686.
[10] Meyn M, Beneke K, Lagaly G. Inorg. Chem., 1990, 29:5201.
[11] Mokhtar M, Basahel S N, Al-Angary Y O. J. Alloys Compd., 2009, 493:376.
[12] Arai Y, Ogawa M. Appl. Clay Sci., 2009, 42:601.
[13] Chagas L H, De Carvalho G S G, Do Carmo W R, San Gil R A S, Chiaro S S X, Leitao A A, Diniz R, De Sena L A, Achete C A. Mater. Res. Bull., 2015, 64:207.
[14] 邓欣(Deng X), 曾虹燕(Zeng H Y), 冯震(Feng Z), 冯波(Feng B). 功能材料(Journal of Functional Materials), 2008, 39(2):341.
[15] Li C M, Wei M, Evans D G, Duan X. Small, 2014, 10:4469.
[16] Ma S L, Huang L, Ma L J, Shim Y, Islsm S M, Wang P L, Zhao L D, Wang S C, Sun G B, Yang X J, Kanatzidis M G. J. Am. Chem. Soc., 2015, 137:3670.
[17] Fu L L, Qi G G, Shekhah O, Belmabkhout Y, Estevez L, Eddaoudi M, Giannelis E P. ChemSusChem, 2014, 7:1035.
[18] Mousty C, Prévot V. Anal. Bioanal. Chem., 2013, 405:3513.
[19] Rives V, Arco M D, Martín C. Appl. Clay Sci., 2014, 88/89:239.
[20] Wang Q, O'Hare D. Chem. Rev., 2012, 112:4124.
[21] Kovanda F, Jindova E, Dousova B, Kolousek D, Plestil J, Sedlakova Z. Acta Geodyn. Geomater., 2009, 6:111.
[22] Solomon M J, Almusallam A S, Seefeldt K F, Somwangthanaroj A, Varadan P. Macromolecules, 2001, 34:1864.
[23] Kornmann X, Lindberg H, Berglund L A. Polymer, 2001, 42:4493.
[24] 徐建华(Xu J H), 郝建薇(Hao J W), 赵芸(Zhao Y), 段雪(Duan X).现代化工(Modern Chemical Industry), 2002, 22:34.
[25] Nyambo C, Wilkie C A. Polym. Degrad. Stabil., 2009, 94:506.
[26] Lonkar S P, Morlat-Therias S, Caperaa N, Leroux F, Gardette J L, Singh R P. Polymer, 2009, 50:1505.
[27] Kutlu B, Meinl J, Leuteritz A, Brünig H, Heinrich G. Polymer, 2013, 54:5712.
[28] Wang Q, Undrell J P, Gao Y S, Cai G P, Buffet J C, Wilkie C A, O'Hare D. Macromolecules, 2013, 46:6145.
[29] Wang Q, O'Hare D. Chem. Commun., 2013, 49:6301.
[30] Wang Q, Zhang X, Zhu J, Guo Z H, O'Hare D. Chem. Commun., 2012, 48:7450.
[31] Nagendra B, Mohan K, Gowd E B. ACS Appl. Mater. Interfaces, 2015, 7:12399.
[32] Liao H, Jia Y Q, Wang L M, Yin Q, Han J B, Sun X L, Wei M. ACS Omega, 2017, 2:4253.
[33] Chen W, Qu B J. J. Mater. Chem., 2004, 14:1705.
[34] Liu J, Chen G M, Yang J P. Polymer, 2008, 49:3923.
[35] Bubniak G A, Schreiner W H, Mattoso N, Wypych F. Langmuir, 2002, 18:5967.
[36] Du L C, Qu B J. J. Mater. Chem., 2006, 16:1549.
[37] Du L C, Qu B J, Zhang M. Polym. Degrad. Stabil., 2007, 92:497.
[38] Ding P, Qu B J. Polym. Eng. Sci., 2006, 46:1153.
[39] Shouldice G T D, Choi P Y, Koene B E, Nazar L F, Rudin A. J. Polym. Sci. Pol. Chem., 1995, 33:1409.
[40] Wang G A, Wang C C, Chen C Y. Polymer, 2005, 46:5065.
[41] Lennerová D, Kovanda F, Brozek J. Appl. Clay Sci., 2015, 114:265.
[42] Carmo D M, Oliveira M G, Soares B G. Appl. Clay Sci., 2014, 101:128.
[43] Wilson O C, Olorunyolemi T, Jaworski A, Boruma L, Younga D, Siriwata A, Dickensb E, Oriakhic C, Lernerc M. Appl. Clay Sci., 1999, 15:265.
[44] Yu J F, Sims J E, Sun L Y. J. Mater. Sci., 2017, 52:6647.
[45] Chen W, Feng L, Qu B J. Solid State Commun., 2004, 130:259.
[46] Li B G, Hu Y, Liu J, Chen Z Y, Fan W C. Colloid Polym. Sci., 2003, 281:998.
[47] Yuan Y, Zhang Y, Shi W F. Appl. Clay Sci., 2011, 53:608.
[48] 段雪(Duan X), 张法智(Zhang F Z). 无机超分子材料的插层组装化学(Intercalation of Inorganic Supramolecular Materials). 北京:科学出版社(Beijing:Science Press), 2009. 68.
[49] Letoux F, Besse J P. Chem. Mater., 2001, 13:3507.
[50] Guo X X, Zhang F Z, Evans D G, Duan X. Chem. Commun., 2010, 46:5197.
[51] Liu Z P, Ma R Z, Osada M, Iyi N, Ebina Y, Takada K, Sasaki T. J. Am. Chem. Soc., 2006, 128:4872.
[52] Yan D P, Lu J, Wei M, Han J B, Ma J, Li F, Evans D G, Duan X. Angew. Chem. Int. Ed., 2009, 121:3119.
[53] Yan D P, Lu J, Ma J, Wei M, Wang X R, Evans D G, Duan X. Langmuir, 2010, 26:7007.
[54] Chen D, Wang X Y, Liu T X, Wang X D, Li J. ACS Appl. Mater. Interfaces, 2010, 2:2005.
[55] 王东(Wang D), 刘红缨(Liu H Y), 贺军辉(He J H), 刘林林(Liu L L). 影像科学与光化学(Photographic Science and Photochemistry), 2012, 30(2):91.
[56] Pan T, Xu S M, Dou Y B, Liu X X, Li Z Z, Han J B, Yan H, Wei M. J. Mater. Chem. A, 2015, 3:12350.
[57] Wang L M, Dou Y B, Wang J J, Han J B, Liu L, Wei M. Compos. Part A Applied Science & Manufacturing, 2017,102:314.
[58] Camino G, Maffezzoli A, Braglia M, Lazzaro M D, Zammarano M. Polym. Degrad. Stabil., 2001, 74:457.
[59] Chattopadhyay D K, Raju K V S N. Prog. Polym. Sci., 2007, 32:352.
[60] Kaul P K, Samson A J, Selvan G T, Enoch IVMV, Selvakumar P M. Appl. Clay Sci., 2016, 135:234.
[61] Manzi-Nshuti C, Hossenlopp J M, Wilkie C A. Polym. Degrad. Stabil., 2008, 93:1855.
[62] Cai J, Heng H M, Hu X P, Xu Q K, Miao F. Polym. Degrad. Stabil., 2016, 126:47.
[63] Zhao C X, Liu Y, Wang D Y, Wang D L, Wang Y Z. Polym. Degrad. Stabil., 2008, 93:1323.
[64] Xu Z P, Saha S K, Braterman P S, D'Souza N. Polym. Degrad. Stabil., 2006, 91:3237.
[65] Wang W, Pan H F, Shi Y Q, Pan Y, Yang W, Liew K M, Song L, Hu Y. Compos. Part A-Appl. Sci. Manufacturing, 2016, 80:259.
[66] 矫庆泽(Jiao Q Z), 赵芸(Zhao Y), 谢晖(Xie H), Evans D G, 段雪(Duan X). 应用化学(Chinese Journal of Applied Chemistry), 2002, 19(10):1011.
[67] 许国志(Xu G Z), 郭灿雄(Guo C X), 段雪(Duan X). 应用化学(Chinese Journal of Applied Chemistry), 1999, 16(3):45.
[68] Wang L J, Xu X Y, Evans D G, Duan X, Li D Q. J. Solid State Chem., 2010, 183:1114.
[69] Wang L J, Wang L R, Feng Y J, Feng J T, Li D Q. Appl. Clay Sci., 2011, 53:592.
[70] Gao Y S, Zhao Y F, Qiu L, Guo Z H, O'Hare D, Wang Q. Polym. Composite., 2015, 38(9):1937.
[71] Choy J H, Jung J S, Oh J M, Park M, Jeong J, Kang Y K, Han O J. Biomaterials, 2004, 25:3059.
[72] Xu Z P, Niebert M, Porazik K, Walker T L, Cooper H M, Middelberg A P, Gray P P, Bartlett P F, Lu G Q. J. Control. Release, 2008, 130:86.
[73] Xu Z P, Gu Z, Cheng X, Rasoul F, Whittaker A K, Lu G Q M. J. Nanopart. Res., 2011, 13:1253.
[74] Mahkam M, Davatgar M, Rezvani Z, Nejati K. Int. J. Polym. Mater., 2013, 62:57.
[75] Hu H, Xiu K M, Xu S L, Yang W T, Xu F J. Bioconjug. Chem., 2013, 24:968.
[76] Hibino T. Appl. Clay Sci., 2014, 87:150.
[77] Li B, Zhang Y X, Zhou X B, Liu Z L, Liu Q Z, Li X H. J. Alloys Compd., 2016, 673:265.
[78] Yan L G, Yang K, Shan R R, Yan T, Wei J, Yu S J, Yu H Q, Du B. J. Colloid Interface Sci. 2015, 448:508.
[79] Tian L, Zhao Y F, He S, Wei M, Duan X. Chem. Eng. J., 2012, 184:261.
[80] Shao M F, Han J B, Wei M, Evans D G, Duan X. Chem. Eng. J., 2011, 168:519.
[81] Dou Y B, Zhou A W, Pan T, Han J B, Wei M, Evans D G, Duan X. Chem. Commun., 2014, 50:7136.
[82] Dou Y B, Pan T, Xu S M, Yan H, Han J B, Wei M, Evans D G, Duan, X. Angew. Chem. Int. Ed., 2015, 54(33):9673.
[83] Cho S, Kwag J, Jeong S, Baek Y, Kim S. Chem. Mater., 2013, 25:1071.
[84] Qin Y M, Lu J, Li S D, Li Z, Zheng S F. J. Phys. Chem. C, 2014, 118:20538.
[85] Liu X X, Zhou A W, Dou Y B, Pan T, Shao M F, Han J B, Wei M. Nanoscale, 2015, 7:17088.
[86] Zhao J W, Shao M F, Yan D P, Zhang S T, Lu Z Z, Li Z X, Gao X Z, Wang B Y, Wei M, Evans D G, Duan X. J. Mater. Chem. A, 2013, 1:5840.
[87] Zhao J W, Xu S M, Tschulik K, Compton R G, Wei M, O'Hare D, Evans D G, Duan X. Adv. Funct. Mater., 2015, 25:2745.
[88] Han J B, Dou Y B, Zhao J W, Wei M, Evans D G, Duan X. Small, 2013, 9:98.
[89] Song Y, Cai X, Xu X X, Liu X X. J. Mater. Chem. A, 2015, 3(28):14712.
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