Page 82 - 《精细化工》2023年第8期
P. 82

·1696·                            精细化工   FINE CHEMICALS                                 第 40 卷

                 supercooling  of  phase change  materials in thermal energy storage   [21]  XU H, XIE X  M. Super-tough and rapidly self-recoverable
                 systems[J]. Renewable and Sustainable Energy Reviews, 2017, 70:   multi-bond network hydrogels facilitated by 2-ureido-4[1H]-pyrimidone
                 905-919.                                          dimers[J]. Chinese Chemical Letters, 2021, 32(1): 521-524.
            [5]   MUZHANJE A T,  HASSAN M  A, OOKAWARA  S,  et al. An   [22]  LIN Y L, HU H W, YI P, et al. Zwitterionic hydrogels formed via
                 overview of the preparation and characteristics of phase change   quadruple hydrogen-bonds with  ultra-fast room-temperature self-
                 materials with nanomaterials[J]. Journal of Energy Storage, 2022, 51:   healing ability[J]. Materials Letters, 2020, 269: 127665.
                 104353.                                       [23]  HU Y Q (胡耀强), CHEN F J (陈法锦), LIU H N (刘海宁), et al.
            [6]   ZHAO M X, ZHANG X, KONG X F. Preparation and characterization of   Preparation of poly(N-isopropylacrylamide)  hydrogel and its thermally
                 a novel composite phase change material with double phase change   induced aggregation behavior[J].Materials Review ( 材 料导报 ),
                 points based on nanocapsules[J]. Renewable Energy, 2020, 147: 374-383.     2018, 32(14): 2491-2496.
            [7]   YI H, AI Z, ZHAO Y L, et al. Design of 3D-network montmorillonite   [24]  TANG L, WANG L, YANG X, et al. Poly(N-isopropylacrylamide)-
                 nanosheet/stearic acid shape-stabilized phase change materials for   based smart hydrogels: Design, properties and applications[J].
                 solar energy storage[J]. Solar Energy Materials and Solar Cells,   Progress in Materials Science, 2021, 115: 100702.
                 2020, 204: 110233.                            [25]  ZHAN T Y, WANG S, GUO Z Y, et al. Preparation and application of
            [8]   DENG Y Y, YANG L J. Preparation and characterization of polyethylene   a stretchable, conductive and temperature-sensitive dual-network
                 glycol (PEG) hydrogel as shape-stabilized phase change material[J].   nanocomposite hydrogel[J]. Journal of Macromolecular Science, Part
                 Applied Thermal Engineering, 2017, 114: 1014-1017.     A, 2022, 59(1): 72-82.
            [9]   WANG R, LI Q Y, DU G T, et al. A hydrogel-like form-stable phase   [26]  ZHAO C  X, GUO M, MAO J,  et al. Self-healing,  stretchable,
                 change material with high loading efficiency supported  by a three   temperature-sensitive and strain-sensitive hydrogel-based flexible
                 dimensional metal-organic network[J]. Chemical Engineering Journal,   sensors[J]. Chinese Journal  of Polymer Science, 2022, 41(3):
                 2021, 420: 129898.                                334-344.
            [10]  ZHOU Y C, YANG J, BAI L, et al. Flexible phase change hydrogels   [27]  CHEN Y H, CHENG W H, TENG L J, et al. Graphene oxide hybrid
                 for mid-/low-temperature infrared stealth[J]. Chemical Engineering   supramolecular hydrogels with self-healable, bioadhesive and
                 Journal, 2022, 446: 137463.                       stimuli-responsive properties and drug delivery application[J].
            [11]  ZHOU  L, TAO X  F, TANG  L S,  et al. Waterproof  phase change   Macromolecular Materials and Engineering, 2018, 303(8): 1700660.
                 material with a facilely incorporated cellulose nanocrystal/poly(N-   [28]  MAIZ-FERNÁNDEZ S, BARROSO N, PÉREZ-ÁLVAREZ L, et al.
                 isopropylacrylamide) network for all-weather outdoor thermal energy   3D printable self-healing  hyaluronic acid/chitosan  polycomplex
                 storage[J]. ACS Applied Materials & Interfaces, 2020, 12(47):   hydrogels with drug release capability[J]. International  Journal of
                 53365-53375.                                      Biological Macromolecules, 2021, 188: 820-832.
            [12]  BAI L G (白立光), ZHU J Q (朱吉钦), CHEN B H (陈标华), et al.   [29]  ZHOU B H (周炳华). Design and electrochemical properties of
                 Applications  of  ionic liquids in  heat transfer and  heat storage   self-healing polymer electrolytes based on quadruple hydrogen
                 process[J]. CIESC Journal (化工学报), 2010, 61(12): 3037-3043.     bonding[D]. Wuhan: Huazhong University of  Science and
            [13]  ZHANG H (张航), YANG B L (杨伯伦). Applications of ionic   Technology (华中科技大学), 2019.
                 liquids for phase-change energy storage[J]. Sci Sin Chim (中国科学:   [30]  GUO F (郭峰), LI H Y (李宏颖), HAN F (韩飞), et al. Synthesis and
                 化学), 2016, 46(12): 1264-1276.                     characterization of ionic liquid 1-ethyl-3-methylimidazolium
            [14]  LIN C, LI W P, YAN Y R, et al. Ultrafine electrospun fiber based on   tetrafluoroborate[J]. Applied Chemical Industry (应用化工), 2011,
                 ionic liquid/AlN/copolyamide composite as novel form-stable phase   40(12): 2055-2058.
                 change material for thermal energy storage[J]. Solar Energy   [31]  QI M Y, LI  G Y, YU N  N,  et al.  Synthesis of thermo-sensitive
                 Materials and Solar Cells, 2021, 223: 110953.     polyelectrolyte complex nanoparticles from CS-g-PNIPAM and
            [15]  BAI J, ZHANG B, YANG B L, et al. Preparation of three-dimensional   SA-g-PNIPAM for controlled  drug release[J]. Macromolecular
                 interconnected graphene/ionic liquid composites to enhanced thermal   Research, 2014, 22(9): 1004-1011.
                 conductivities for battery thermal management[J]. Journal of Cleaner   [32]  CHANG C J, REDDY P M, HSIEH S R, et al. Influence of imidazolium
                 Production, 2022, 370: 133572.                    based green solvents  on  volume phase transition  temperature of
            [16]  SUN N (孙楠), ZHANG K X (张凯鑫), GUO Z X (郭子旭), et al.   crosslinked poly(N-isopropylacrylamide-co-acrylic acid) hydrogel[J].
                 Research progress on  the application  of  plant-based biomass   Soft Matter, 2014, 11(4): 785-792.
                 resources in self-healing materials[J]. Fine Chemicals (精细化工),   [33]  REDDY P M,  VENKATESU P. Ionic liquid modifies the lower
                 2021, 38(9): 1729-1736.                           critical solution temperature (LCST) of poly( N-isopropylacrylamide)
            [17]  JIANG S Q (蒋山泉), DENG X H (邓小红), HU C B (胡承波), et al.   in aqueous solution[J]. The Journal of Physical Chemistry B, 2011,
                 Synthesis and evaluation of self-healing pH-sensitive hydrogel based   115(16): 4752-4757.
                 on dynamic covalent bond[J]. Fine Chemicals (精细化工), 2021,   [34]  KARIMINEGHLANI P, EMMONS  E, GREEN M J,  et al. A
                 38(10): 2012-2018.                                temperature-responsive poly(vinyl alcohol) gel for controlling fluidity
            [18]  WANG  X C (王学川), GAN T (甘婷), ZHU  X (朱兴),  et al.   of an inorganic phase change material[J]. Journal of Materials Chemistry
                 Classification of functional gelatin-based hydrogels and research   A, 2017, 5(24): 12474-12482.
                 progress[J]. Fine Chemicals (精细化工), 2021, 38(2): 217-225,248.     [35]  AMIRI A, MAZAHERI H. Study on the behavior of a temperature-
            [19]  LIU X, MA  Y, ZHANG X,  et al. Cellulose nanocrystal  reinforced   sensitive hydrogel micro-channel via FSI and non-FSI approaches[J].
                 conductive nanocomposite hydrogel with fast self-healing and   Acta Mechanica, 2020, 231(7): 2799-2813.
                 self-adhesive properties for human  motion sensing[J]. Colloids and   [36]  CAYKARA T, KIPER S, DEMIREL G, et al. Temperature-responsive
                 Surfaces A: Physicochemical and Engineering Aspects, 2021, 613:   characteristics of poly(N-isopropylacrylamide) hydrogels with
                 126076.                                           macroporous structure[J]. Polymer International, 2007, 56(2): 275-282.
            [20]  ZHANG G,  NGAI  T, DENG Y,  et al.  An injectable hydrogel with   [37]  ZHANG Y J, FURYK S, BERGBREITER D E, et al. Specific ion
                 excellent self-healing property based on  quadruple hydrogen   effects on the water solubility of macromolecules: PNIPAM and the
                 bonding[J]. Macromolecular Chemistry and Physics, 2016, 217(19):   Hofmeister series[J]. Journal of the  American Chemical Society,
                 2172-2181.                                        2005, 127(41): 14505-14510.
   77   78   79   80   81   82   83   84   85   86   87