• Journal of Inorganic Materials
  • Vol. 35, Issue 9, 1023 (2020)
Xincong ZHANG, Ke GUO, Lianlian PENG, Jieyu WU, Fumin ZHANG, Weidong ZHU, and Yanghe FU*
Author Affiliations
  • Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, Institute of Advanced Fluorine-Containing Materials, Zhejiang Normal University, Jinhua 321004, China
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    DOI: 10.15541/jim20190542 Cite this Article
    Xincong ZHANG, Ke GUO, Lianlian PENG, Jieyu WU, Fumin ZHANG, Weidong ZHU, Yanghe FU. Degradation of Dye Wastewater over NH2-UiO-66: Piezoelectrically Induced Mechano-Catalytic Effect[J]. Journal of Inorganic Materials, 2020, 35(9): 1023 Copy Citation Text show less
    References

    [1] K GUPTA V, D PATHANIA, S AGARWAL. Adsorptional photocatalytic degradation of methylene blue onto pectin-CuS nanocomposite under solar light. Journal of Hazardous Materials, 243, 179-186(2012).

    [2] T XIA Y, M JIA Y, Q QIAN W. Pyroelectrically induced pyro-electro-chemical catalytic activity of BaTiO3 nanofibers under room-temperature cold-hot cycle excitations. Metals, 7, 122(2017).

    [3] C CHEN C, H MA W, C ZHAO J. Semiconductor-mediated photodegradation of pollutants under visible-light irradiation. Chemical Society Reviews, 39, 4206-4219(2010).

    [4] M DU W, X LIU L, K ZHOU K. Black lead molybdate nanoparticles: facile synthesis and photocatalytic properties responding to visible light. Applied Surface Science, 328, 428-435(2015).

    [5] D MALWALl, P GOPINATH. Enhanced photocatalytic activity of hierarchical three dimensional metal oxide@CuO nanostructures towards the degradation of Congo Red dye under solar radiation. Catalysis Science & Technology, 6, 4458-4472(2016).

    [6] K BATABYAL S, E LU S, J VITTAL J. Synthesis, characterization, and photocatalytic properties of In2S3, ZnIn2S4, and CdIn2S4 nanocrystals. Crystal Growth & Design, 16, 2231-2238(2016).

    [7] J XU, P WANG Z, F ZHU Y. Enhanced visible-light-driven photocatalytic disinfection performance and organic pollutant degradation activity of porous g-C3N4 nanosheets. ACS Applied Materials & Interfaces, 9, 27727-27735(2017).

    [8] H LIU, T JIN Z, Z XU Z. Hybridization of Cd0.2Zn0.8S with g-C3N4 nanosheets: a visible-light-driven photocatalyst for H2 evolution from water and degradation of organic pollutants. Dalton transactions, 44, 14368-14375(2015).

    [9] B GAO, F LIU L, D LIU J. Photocatalytic degradation of 2,4,6-tribromophenol on Fe2O3 or FeOOH doped ZnIn2S4 heterostructure: insight into degradation mechanism. Applied Catalysis B: Environmental, 147, 929-939(2014).

    [10] S IKEDA, T TAKATA, T KONDO. Mechano-catalytic overall water splitting. Chemical Communications, 1998, 2185-2186.

    [11] L XU X, M JIA Y, B XIAO L. Strong vibration-catalysis of ZnO nanorods for dye wastewater decolorization via piezo-electro- chemical coupling. Chemosphere, 193, 1143-1148(2018).

    [12] S HONG K, H XU, H KONISHI. Piezoelectrochemical effect: A new mechanism for azo dye decolorization in aqueous solution through vibrating piezoelectric microfibers. The Journal of Physical Chemistry C, 116, 13045-13051(2012).

    [13] H LIN, Z WU, M JIA Y. Piezoelectrically induced mechano- catalytic effect for degradation of dye wastewater through vibrating Pb(Zr0.52Ti0.48)O3 fibers. Applied Physics Letters, 104, 162907-162911(2014).

    [14] H L YOU, M JIA Y, Z WU. Strong piezo-electrochemical effect of multiferroic BiFeO3 square micro-sheets for mechanocatalysis. Electrochemistry Communications, 79, 55-58(2017).

    [15] L XU X, Z WU, B XIAO L. Strong piezo-electro-chemical effect of piezoelectric BaTiO3 nanofibers for vibration-catalysis. Journal of Alloys and Compounds, 762, 915-921(2018).

    [16] J LEE, K FARHA O, J ROBERTS. Metal-organic framework materials as catalysts. Chemical Society Reviews, 38, 1450-1459(2009).

    [17] T ZHANG, W LIN. Metal-organic frameworks for artificial photosynthesis and photocatalysis. Chemical Society Reviews, 43, 5982-5993(2014).

    [18] Y HAO S, X HOU S, C HAO Z. A new three-dimensional bis(benzimidazole)-based cadmium(II) coordination polymer. Spectrochim Acta A Mol. Biomol. Spectrosc, 189, 613-620(2018).

    [19] J Xu G, S MENG Z, J GUO X. Molecular simulations on CO2 adsorption and adsorptive separation in fullerene impregnated MOF-177, MOF-180 and MOF-200. Computational Materials Science, 168, 58-64(2019).

    [20] S EDUBILLI, S GUMMA. A systematic evaluation of UiO-66 metal organic framework for CO2/N2 separation. Separation and Purification Technology, 224, 85-94(2019).

    [21] F AHMADIJOKANI, S AHMADIPOUYA, H MOLAVI. Amino-silane-grafted NH2-MIL-53(Al)/polyethersulfone mixed matrix membranes for CO2/CH4 separation. Dalton Transactions, 48, 13555-13566(2019).

    [22] J D, S ZHANG S, X FENG. A novel peroxidase mimetic Co-MOF enhanced luminol chemiluminescence and its application in glucose sensing. Sensors and Actuators B: Chemical, 296, 126631-126639(2019).

    [23] Q LIU Q, H ZHANG S, J YANG. A water-stable La-MOF with high fluorescence sensing and supercapacitive performances. The Analyst, 144, 4534-4544(2019).

    [24] T GAO, X DONG B, Y SUN. Fabrication of a water-stable luminescent MOF with an open Lewis basic triazolyl group for the high-performance sensing of acetone and Fe3+ ions. Journal of Materials Science, 54, 10644-10655(2019).

    [25] M ALVARO, E CARBONELL, B FERRER. Semiconductor behavior of a metal-organic framework (MOF). Chemistry, 13, 5106-5112(2007).

    [26] C CHENG, Z FANG J, Y LU S. Zirconium metal-organic framework supported highly-dispersed nanosized BiVO4 for enhanced visible-light photocatalytic applications. Journal of Chemical Technology & Biotechnology, 91, 2785-2792(2016).

    [27] S FENG, B WANG R, S FENG S. Synthesis of Zr-based MOF nanocomposites for efficient visible-light photocatalytic degradation of contaminants. Research on Chemical Intermediates, 45, 1263-1279(2018).

    [28] X MU X, F JIANG J, F CHAO F. Ligand modification of UiO-66 with an unusual visible light photocatalytic behavior for RhB degradation. Dalton Transactions, 47, 1895-1902(2018).

    [29] J DING, Q YANG Z, C HE. UiO-66(Zr) coupled with Bi2MoO6 as photocatalyst for visible-light promoted dye degradation. Journal of Colloid and Interface Science, 497, 126-133(2017).

    [30] K ZHANG Y, Z JIN. Effective electron-hole separation over a controllably constructed WP/UiO-66/CdS heterojunction to achieve efficiently improved visible-light-driven photocatalytic hydrogen evolution. Physical Chemistry Chemical Physics, 21, 8326-8341(2019).

    [31] J WANG Z, L JIN Z, H YUAN. Orderly-designed Ni2P nanoparticles on g-C3N4 and UiO-66 for efficient solar water splitting. Journal of Colloid and Interface Science, 532, 287-299(2018).

    [32] P TIAN, X HE, X Li W. Zr-MOFs based on keggin-type polyoxometalates for photocatalytic hydrogen production. Journal of Materials Science, 53, 12016-12029(2018).

    [33] Y WANG, Y YU, R LI. Hydrogen production with ultrahigh efficiency under visible light by graphene well-wrapped UiO-66- NH2 octahedrons. Journal Materinals Chemistry A, 5, 20136-20140(2017).

    [34] N WANG Y, L GUO, Q ZENG Y. Amino-assisted NH2-UiO- 66 anchored on porous g-C3N4 for enhanced visible-light-driven CO2 reduction. ACS Applied Materials & Interfaces, 11, 30673-30681(2019).

    [35] Y CHEN L, Y YU F, S SHEN X. N-CND modified NH2-UiO- 66 for photocatalytic CO2 conversion under visible light by a photo- induced electron transfer process. Chemical Communications, 55, 4845-4848(2019).

    [36] P PAN J, H XU Q, L FANG. Ru nanoclusters supported on HfO2@CN derived from NH2-UiO-66(Hf) as stable catalysts for the hydrogenation of levulinic acid to γ-valerolactone. Catalysis Communications, 128, 105710-105715(2019).

    [37] S ZHENG, Y YANG P, M ZHANG F. Pd nanoparticles encaged within amine-functionalized metal-organic frameworks: catalytic activity and reaction mechanism in the hydrogenation of 2,3,5- trimethylbenzoquinone. Chemical Engineering Journal, 328, 977-987(2017).

    [38] M JUN B, S KIM, J HEO. Enhanced sonocatalytic degradation of carbamazepine and salicylic acid using a metal-organic framework. Ultrasonics Sonochemistry, 56, 174-182(2019).

    [39] Y SUN, F GAO J, Y CHENG. Design of the hybrid metal- organic frameworks as potential supramolecular piezo-/ferroelectrics. The Journal of Physical Chemistry C, 123, 3122-3129(2019).

    [40] A HUANG, L WAN L, J CARO. Microwave-assisted synthesis of well-shaped UiO-66-NH2 with high CO2 adsorption capacity. Materials Research Bulletin, 98, 308-313(2018).

    [41] J GE, L LIU L, H SHEN Y. Facile synthesis of amine-functionalized UiO-66 by microwave method and application for methylene blue adsorption. Journal of Porous Materials, 24, 647-655(2016).

    [42] R BOWEN C, A KIM H, M WEAVER P. Piezoelectric and ferroelectric materials and structures for energy harvesting applications. Energy & Environmental Science, 7, 25-44(2014).

    [43] J LI W, Z LI D, J ZHANG W. Microwave synthesis of ZnxCd1-xS nanorods and their photocatalytic activity under visible light. The Journal of Physical Chemistry C, 114, 2154-2159(2010).

    Xincong ZHANG, Ke GUO, Lianlian PENG, Jieyu WU, Fumin ZHANG, Weidong ZHU, Yanghe FU. Degradation of Dye Wastewater over NH2-UiO-66: Piezoelectrically Induced Mechano-Catalytic Effect[J]. Journal of Inorganic Materials, 2020, 35(9): 1023
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