1 | KIM T, KANG J H, YANG S J, et al. Facile preparation of reduced graphene oxide-based gas barrier films for organic photovoltaic devices[J]. Energy and Environmental Science, 2014, 7: 3403-3411. | 2 | SEETHAMRAJU S, RAMAMURTHY P C, MADRAS G. Flexible poly(vinyl alcohol-co-ethylene)/modified MMT moisture barrier composite for encapsulating organic devices[J]. RSC Advances, 2013, 3: 12831-12838. | 3 | JUNG K H, J-Y BAE, PARK S J, et al. High performance organic-inorganic hybrid barrier coating for encapsulation of OLEDs[J]. Journal of Materials Chemistry, 2011, 21: 1977-1983. | 4 | KIM S W, S-H CHA. Thermal, mechanical, and Sgas barrier properties of ethylene-vinyl alcohol copolymer-based nanocomposites for food packaging films: effects of nanoclay loading[J]. Journal of Applied Polymer Science, 2014, 131: 40289-40296. | 5 | LAPE N K, NUXOLL E E, CUSSLER E L. Polydisperse flakes in barrier films[J]. Journal of Membrane Science, 2004, 236: 29-37. | 6 | INTROZZI L, BLOMFELD T, TRABATTONI S, et al. Ultrasound-assisted pullulan/montmorillonite bionanocomposite coating with high oxygen barrier properties[J]. Langmuir, 2012, 28: 11206-11214. | 7 | HAGEN D A, BOX C, GREENLEE S, et al. High gas barrier imparted by similarly charged multilayers in nanobrick wall thin films[J]. RSC Advances, 2014, 4: 18354-18359. | 8 | COMPTON O C, KIM S, PIERRE C, et al. Crumpled graphene nanosheets as highly effective barrier property enhancers[J]. Advanced Materials, 2010, 22: 4759-4763. | 9 | M?LLER M W, KUNZ D A, LUNKENBEIN T, et al. Barrier properties of synthetic clay with a kilo-aspect ratio[J]. Advanced Materials, 2010, 22: 5245-5249. | 10 | WU Chunnan, YANG Quanling, TAKEUCHI M, et al. Highly tough and transparent layered composites of nanocellulose and synthetic silicate[J]. Nanoscale, 2014, 6: 392-399. | 11 | CUSSLER E L, HUGHES S E, WARD W J, et al. Barrier membranes[J]. Journal of Membrane Science, 1988, 38: 161-174. | 12 | CHENG Qunfeng, WU Mengxi, LI Mingzhu, et al. Ultratough artificial nacre based on conjugated cross-linked graphene oxide[J]. Angewandte Chemie: International Edition, 2013, 52: 3750-3755. | 13 | XU Zhen, SUN Haiyan, ZHAO Xiaoli, et al. Ultrastrong fibers assembled from giant graphene oxide sheets[J]. Advanced Materials, 2013, 25: 188-193. | 14 | WANG Qiang, O’HARE D. Recent advances in the synthesis and application of layered double hydroxide (LDH) nanosheets[J]. Chemical Reviews, 2012, 112: 4124-4155. | 15 | LEROUX F, TAVIOT-GUéHO C. Fine tuning between organic and inorganic host structure: new trends in layered double hydroxide hybrid assemblies[J]. Journal of Membrane Science, 2005, 15: 3628-3642. | 16 | GUNJAKAR J L, KIM T W, KIM H N, et al. Mesoporous layer-by-layer ordered nanohybrids of layered double hydroxide and layered metal oxide: highly active visible light photocatalysts with improved chemical stability[J]. Journal of the American Chemical Society, 2011, 133: 14998-15007. | 17 | ZHANG Fazhi, ZHAO Lili, CHEN Hongyun, et al. Corrosion resistance of superhydrophobic layered double hydroxide films on aluminum[J]. Angewandte Chemie: International Edition, 2008, 47: 2466-2469. | 18 | ZHAO Mengqiang, LIU Xiaofei, ZHANG Qiang, et al. Graphene/single-walled carbon nanotube hybrids: one-step catalytic growth and applications for high-rate Li-S batteries[J]. Advanced Functional Materials, 2012, 22: 675-694. | 19 | GAO Rui, YAN Dongpeng, DUAN Xue, et al. Layer-by-layer assembly of long-afterglow self-supporting thin films with dual-stimuli-responsive phosphorescence and antiforgery applications[J]. Nano Research, 2017, 10: 3606-3617. | 20 | GAO Rui, YAN Dongpeng. Ordered assembly of hybrid room-temperature phosphorescence thin films showing polarized emission and the sensing of VOCs[J]. Chemical Communications, 2017, 53: 5408-5411. | 21 | HAN Jingbin, DOU Yibo, YAN Dongpeng, et al. Biomimetic design and assembly of organic-inorganic composite films with simultaneously enhanced strength and toughness[J]. Chemical Communications, 2011, 47: 5274-5276. | 22 | DOU Yibo, ZHOU Awu, PAN Ting, et al. Humidity-triggered self-healing films with excellent oxygen barrier performance[J]. Chemical Communications, 2014, 50: 7136-7138. | 23 | LI Zhixiong, LIANG Ruizheng, XU Simin, et al. Multi-dimensional, light-controlled switch of fluorescence resonance energy transfer based on orderly assembly of 0D dye@micro-micelles and 2D ultrathin-layered nanosheets[J]. Nano Research, 2016, 9: 3828-3838. | 24 | DOU Yibo, XU Simin, LIU Xiaoxi, et al. Transparent, flexible films based on layered double hydroxide/cellulose acetate with excellent oxygen barrier property[J]. Advanced Functional Materials, 2014, 24: 514-521. | 25 | THOMPSON D W, BUTTERWORTH J T. The nature of laponite and its aqueous dispersions[J]. Journal of Colloid and Interface Science, 1992, 151: 236-243. | 26 | PLOEHN H J, LIU Chunyan. Quantitative analysis of montmorillonite platelet size by atomic force microscopy[J]. Industrial and Engineering Chemistry Research, 2006, 45: 7025-7034. | 27 | VALI H, HESSE R, KODAMA H. Arrangement of n-alkylammonium ions in phlogopite and vermiculite: an XRD and TEM study[J]. Clays and Clay Minerals, 1992, 40: 240-245. | 28 | NIELSEN L E. Models for the permeability of filled polymer systems[J]. Journal of Macromolecular Science: Chemistry, 1967, 1: 929-942. | 29 | YANG Chuanfang, SMYRL W H, CUSSLER E L. Flake alignment in composite coatings[J]. Journal of Materials Chemistry, 2004, 231: 1-12. | 30 | NAZARENKO S, MENEGHETTI P, JULMON P, et al. Gas barrier of polystyrene montmorillonite clay nanocomposites: effect of mineral layer aggregation[J]. Journal of Polymer Science: Polymer Physics, 2007, 45: 1733-1753. | 31 | YANO K, USUKI A, OKADA A, et al. Synthesis and properties of polyimide-clay hybrid[J]. Journal of Polymer Science: Polymer Chemistry, 1993, 31(10): 2493-2498. | 32 | BHARADWAJ R K. Modelling the barrier properties of polymer layered silicate nanocomposites[J]. Macromolecules, 2001, 34(26): 9189-9192. | 33 | HERRERA-ALONSO J M, MARAND E, LITTER J C, et al. Transport properties in polyurethane/clay nanocomposites as barrier materials: effect of processing conditions[J]. Journal of Materials Chemistry, 2009, 337: 208-214. | 34 | GRUNLAN J C, GRIGORIAN A, HAMILTON C B, et al. Effect of clay concentration on the oxygen permeability and optical properties of a modified poly(vinyl alcohol)[J]. Journal of Applied Polymer Science, 2004, 93: 1102-1109. | 35 | TRIANTAFYLLIDIS K S, LEBARON P C, PAEK I, et al. Epoxy-clay fabric film composites with unprecedented oxygen-barrier properties[J]. Chemistry of Materials, 2006, 18: 4393-4398. | 36 | KOO W H, JEONG S M, CHOI S H, et al. Water vapor barrier properties of transparent SnO2-SiOx composite films on polymer substrate[J]. Journal of Physical Chemistry B, 2004, 108: 18884-18889. | 37 | HERRERA-ALONSO J M, SEDLAKOVA Z, MARAND E. Gas transport properties of polyacrylate/clay nanocomposites prepared via emulsion polymerization[J]. Journal of Materials Chemistry, 2010, 363: 48-56. | 38 | EBINA T, MZUKAMI F. Flexible transparent clay films with heat-resistant and high gas-barrier properties[J]. Advanced Materials, 2007, 19: 2450-2453. | 39 | WALTHER A, BJURHAGER I, MALHO J M, et al. Large-area, lightweight and thick biomimetic composites with superior material properties via fast, economic, and green pathways[J]. Nano Letters, 2010, 10: 2742-2748. | 40 | YU Jingfang, RUENGKAJORN K, CRIVOI D, et al. High gas barrier coating using non-toxic nanosheet dispersions for flexible food packaging film[J]. Nature Communications, 2019, 10: 2398. | 41 | MAO Long, LIU Yuejun, WU Huiqing, et al. Poly(ε-caprolactone) filled with polydopamine-coated high aspect ratio layered double hydroxide: simultaneous enhancement of mechanical and barrier properties[J]. Applied Clay Science, 2017, 150: 202-209. | 42 | LI Gaofeng, LUO Wenhan, XIAO Min, et al. Biodegradable poly(propylene carbonate)/layered double hydroxide composite films with enhanced gas barrier and mechanical properties[J]. Chinese Journal of Polymer Science, 2016, 34: 13-22. | 43 | WANG Lumei, DOU Yibo, WANG Jiajie, et al. Layer-by-layer assembly of layered double hydroxide/rubber multilayer films with excellent gas barrier property[J]. Composites A: Applied Science and Manufacturing, 2017, 102: 314-321. | 44 | PAN Ting, XU Simin, DOU Yibo, et al. Remarkable oxygen barrier films based on a layered double hydroxide/chitosan hierarchical structure[J]. Journal of Materials Chemistry A, 2015, 3: 12350-12356. | 45 | WANG Jiajie, XU Xiaozhi, ZHANG Jian, et al. Moisture-permeable, humidity-enhanced gas barrier films based on organic/inorganic multilayers[J]. ACS Applied Materials and Interfaces, 2018, 10: 28130-28138. | 46 | XU Xiaozhi, WANG Lumei, WANG Jiajie, et al. Hydroxide-ion-conductive gas barrier films based on layered double hydroxide/polysulfone multilayers[J]. Chemical Communications, 2018, 54: 7778-7781. | 47 | DOU Yibo, PAN Ting, XU Simin, et al. Transparent, ultrahigh-gas-barrier films with a brick-mortar-sand structure[J]. Angewandte Chemie: International Edition, 2015, 54: 9673-9678. |
|