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第 2 期 贺同强,等: 应用微反应器合成碳酸丙烯酯的工艺与模拟 ·447·
transformation of styrene with CO 2 into styrene carbonate[J]. Fine 2019, 36(7): 1483-1487.
Chemicals (精细化工), 2021, 38(3): 632-639. [17] WU Q L (伍青林), ZHANG S K (张仕凯), CHEN D (陈东). Current
[13] WANG W Z (王文珍), ZHAO S D (赵赛迪), WANG L (汪力), et al. research development of microreactor design and application[J]. Chinese
Research progress on conversion of CO 2 to cyclic carbonates Hydraulics & Pneumatics (液压与气动), 2022, 46(5): 103-117.
catalyzed by metal complexes[J]. Fine Chemicals (精细化工), 2021, [18] LI M R (李明燃). Application of microreactor in ring opening
38(10): 1956-1961. reaction of the cyclic compounds[D]. Dalian: Dalian University of
[14] REN W M, LIU Y, LYU X B. Bifunctional aluminum catalyst for Technology (大连理工大学), 2017.
CO 2 fixation: Regioselective ring opening of three-membered [19] QI W Z (齐文哲), GUO K (郭凯), ZHAO M E (赵明恩), et al.
heterocyclic compounds[J]. Journal of Organic Chemistry, 2014, Numerical simulation of liquid mixing in T-type micro-mixers[J].
79(20): 9771-9777. Chemical Engineering (化学工程), 2015, 43(3): 64-69.
[15] BOBADILLA L F, AZANCOT L, ODRIOZOLA J A. CO 2 utilization [20] TIAN Q (田琦), TAN P L (檀盼龙). Fluent simulation of fluid flow
enabled by microchannel reactors[M]// Engineering Solutions for CO 2 in a T-junction microchannel[J]. Yunnan Chemical Technology (云南
Conversion. Weinheim: WILEY-VCH GmbH, 2021: 205-225. 化工), 2017, 44(7): 57-59.
[16] LI Y X (李钰欣), YAN S H (严生虎), ZHANG Y (张跃), et al. [21] ZHAO Y C, YAO C Q, CHEN G W, et al. Highly efficient synthesis
Continuous flow synthesis process of glyoxylic acid by oxidation of of cyclic carbonate with CO 2 catalyzed by ionic liquid in a
glyoxal with hydrogen peroxide[J]. Fine Chemicals (精细化工), microreactor[J]. Green Chemistry, 2013,15(2): 446-452.
(上接第 406 页) collection in water[J]. Journal of Materials Chemistry A, 2018, 6(8):
3402-3413.
[11] WANG Z, YANG J, LI Y S, et al. Simultaneous degradation and [25] XIU Q H (修其慧),DENG X Y (邓晓燕),GAO H T (高洪涛).
removal of Cr(Ⅵ) from aqueous solution with Zr-based metal-organic Mechanism of adsorption removal of Cu(Ⅱ) from water by MoS 2[J].
frameworks bearing inherent reductive sites[J]. Chemistry-A European Journal of Qingdao University of Science and Technology (青岛科技
Journal, 2017, 323: 252-259. 大学学报), 2019, 40(5): 31-36.
[12] ZHANG H, MA Z G, LIU L, et al. Highly active nonprecious metal [26] YAN D F, LI Y X, HUO J, et al. Defect chemistry of nonprecious-
hydrogen evolution electrocatalyst: Ultrafine molybdenum carbide metal electrocatalysts for oxygen reactions[J]. Advanced Materials,
nanoparticles embedded into a 3D nitrogen-implanted carbon matrix[J]. 2017, 29: 1606459.
NPG Asia Materials, 2016, 8: 293-301. [27] FANG X, WU S B, WU Y H, et al. High-efficiency adsorption of
[13] LI Z Z, MENG X C, ZHANG Z S. Equilibrium and kinetic modelling norfloxacin using octahedral UiO-66-NH 2 nanomaterials: Dynamics,
of adsorption of rhodamine B on MoS 2[J]. Materials Research Bulletin, thermodynamics, and mechanisms[J]. Applied Surface Science, 2020,
2018, 111: 8918-8923. 518: 121469.
[14] ZHANG W, ZOU G F, CHOI J H. Adsorption behavior of the [28] XIE D H, GU Y, WANG H J, et al. Enhanced fluoride removal by
hydroxyl radical and its effects on monolayer MoS 2[J]. ACS Omega, hierarchically porous carbon foam monolith with high loading of UiO-
2020, 5(4): 1982-1986. 66[J]. Journal of Colloid and Interface Science, 2019, 542: 3876-3893.
[15] ZHOU Y Q, GAO Y, WANG H L, et al. Versatile 3D reduced [29] BHAUMIK M, AGARWAL S, GUPTA K V, et al. Enhanced removal
graphene oxide/poly(amino-phosphonic acid) aerogel derived from of Cr(Ⅵ) from aqueous solutions using polypyrrole wrapped oxidized
waste acrylic fibers as an efficient adsorbent for water purification[J]. MWCNTs nanocomposites adsorbent[J]. Journal of Colloid and
Science of the Total Environment, 2021, 776(3): 1715-1722. Interface Science, 2016, 470: 1090-1100.
[16] LI Y (李莹),ZHANG C (张晨). Study on microporous structure and [30] REN L F, GAO X D, ZHANG X Y, et al. Stable and recyclable
properties of polyurethane/amino modified graphene foam composites[J]. polyporous polyurethane foam highly loaded with UIO-66-NH 2
China Plastics (中国塑料), 2019, 33(5): 7-13. nanoparticles for removal of Cr(Ⅵ) in wastewater[J]. Polymer, 2022,
[17] BURTCH C. Water stability and adsorption in metal-organic frameworks 255: 125117.
[J]. Chemical Reviews, 2016, 114(20): 10575. [31] WANG X, HONG M Z, ZHANG F W, et al. Recyclable nanoscale
[18] LI Y C, LIN Z Y, WANG X Y, et al. High-hydrophobic ZIF-8@PLA zero valent iron doped g-C 3N 4/MoS 2 for efficient photocatalysis of
composite aerogel and application for oil-water separation[J]. Separation RhB and Cr(Ⅵ) driven by visible light[J]. ACS Sustainable Chemistry &
and Purification Technology, 2021, 270: 118794. Engineering, 2016, 4: 4055-4063.
[19] WANG X B, FANG Z S, LI Z Y, et al. R-phycoerythrin proteins@ [32] DARADMARE S, XIA M, LE V N, et al. Metal-organic
ZIF-8 composite thin films for mercury ion detection[J]. Analyst, frameworks/alginate composite beads as effective adsorbents for the
2019, 144: 3892-3897. removal of hexavalent chromium from aqueous solution[J]. Chemosphere,
[20] MADHU R, SANKAR S S, KARTHICK K, et al. Electrospun 2020, 270: 129487.
cobalt-incorporated MOF-5 microfibers as a promising electrocatalyst [33] SHAH A H, YUAN C, HAO W Y, et al. Adsorption kinetics of
for OER in alkaline media[J]. Inorganic Chemistry, 2021, 60(13): simulated mixture wastewaters over porous Bi 2MoO 6@BiOCl@MOF-
9899-9911. 199 heterostructure[J]. Journal of Solid State Chemistry, 2022, 307:
[21] FU H, OU P F, ZHU J, et al. Enhanced protein adsorption in fibrous 122835.
substrates treated with zeolitic imidazolate framework-8 (ZIF-8) [34] XIE H Z, WAN Y L, CHEN H, et al. Cr(Ⅵ) adsorption from aqueous
nanoparticles[J]. ACS Applied Nano Materials, 2019, 2(12): 7626-7636. solution by UiO-66 modified corncob[J]. Sustainability, 2021, 13(23):
[22] YAO B J, FU Q J, LI A X, et al. A thermo-responsive polymer-tethered 685969.
and Pd NP loaded UiO-66 NMOF for biphasic CB dechlorination[J]. [35] LI J, PENG T X, ZHANG Y C, et al. Polyaniline modified SnO 2
Green Chemistry, 2019, 21: 1625-1634. nanoparticles for efficient photocatalytic reduction of aqueous Cr(Ⅵ)
[23] MATTHEW R, DESTEFAN, SERGIO J, et al. Room-temperature under visible light[J]. Separation and Purification Technology, 2018,
synthesis of UiO-66 and thermal modulation of densities of defect 201: 120-129.
sites[J]. Chemistry of Materials, 2017, 29(3): 1357-1361. [36] JURCIC M, PEVELER J W, SAVORY N, et al. Sensing and
[24] LI Z S, ZHOU G S, DAI H, et al. Biomineralization-mimetic discrimination of explosives at variable concentration with a large-
preparation of hybrid membranes with ultra-high loading of pristine pore MOF as part of a luminescent array[J]. ACS Applied Materials &
metal-organic frameworks grown on silk nanofibers for hazard Interfaces, 2019, 501(12): 518-524.