• Journal of Inorganic Materials
  • Vol. 37, Issue 5, 534 (2022)
Lin AN1, Hao WU1, Xin HAN2,*, Yaogang LI1..., Hongzhi WANG1 and Qinghong ZHANG1,*|Show fewer author(s)
Author Affiliations
  • 11. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China
  • 22. State Key Laboratory of Chemical Engineering, School of Chemical Engineering, East China University of Science and Technology, Shanghai 200237, China
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    DOI: 10.15541/jim20210267 Cite this Article
    Lin AN, Hao WU, Xin HAN, Yaogang LI, Hongzhi WANG, Qinghong ZHANG. Non-precious Metals Co5.47N/Nitrogen-doped rGO Co-catalyst Enhanced Photocatalytic Hydrogen Evolution Performance of TiO2[J]. Journal of Inorganic Materials, 2022, 37(5): 534 Copy Citation Text show less
    References

    [1] C ZOU, B XIONG, H XUE. The role of new energy in carbon neutral. Petroleum Exploration and Development, 48, 1-10(2021).

    [2] A FUJISHIMA, K HONDA. Electrochemical photolysis of water at a semiconductor electrode. Nature, 238, 37-38(1972).

    [3] R SINGH, S DUTTA. A review on H2 production through photocatalytic reactions using TiO2/TiO2-assisted catalysts. Fuel, 220, 607-620(2018).

    [4] H XIONG, L WU, Y LIU. Controllable synthesis of mesoporous TiO2 polymorphs with tunable crystal structure for enhanced photocatalytic H2 production. Advanced Energy Materials, 9, 1901634(2019).

    [5] X HAN, L AN, D XU. Mesoporous Pt/TiO2-xNx nanoparticles with less than 10 nm and high specific surface area as visible light hydrogen evolution photocatalysts. Journal of Sol-Gel Science and Technology, 87, 230-239(2018).

    [6] V KUMARAVEL, S MATHEW, J BARTLETT. Photocatalytic hydrogen production using metal doped TiO2: a review of recent advances. Applied Catalysis B: Environmental, 244, 1021-1064(2019).

    [7] P WANG, X LI, Z SHI. Synergistic effect of Ag and Ag2O on photocatalytic H2-evolution performance of TiO2. Journal of Inorganic Materials, 35, 781-788(2020).

    [8] H TIAN, Z KANG S, X LI. Fabrication of an efficient noble metal-free TiO2-based photocatalytic system using Cu-Ni bimetallic deposit as an active center of H2 evolution from water. Solar Energy Materials and Solar Cells, 134, 309-317(2015).

    [9] S FU Y, M BI, C LI. Research progress on non-noble metal/ nitrogen-doped carbon composite materials in electrocatalytic oxygen evolution reaction. Journal of Inorganic Materials, 37, 163-172(2022).

    [10] J HOU, X LAN, J SHI. A mild and simple method to fabricate commercial TiO2(P25) and C60 composite for highly enhancing H2 generation. International Journal of Hydrogen Energy, 45, 2852-2861(2020).

    [11] J WANG, H JIA, Y GUO. (TiO2 (B)nanosheet)/(metallic phase MoS2) hybrid nanostructures: An efficient catalyst for photocatalytic hydrogen evolution. Solar RRL, 3, 1900323(2019).

    [12] S NOVOSELOV K, K GEIM A, V MOROZOV S. Electric field effect in atomically thin carbon films. Science, 306, 666-669(2004).

    [13] A MUKHERJI, B SEGER, Q LU G. Nitrogen doped Sr2Ta2O7 coupled with graphene sheets as photocatalysts for increased photocatalytic hydrogen production. ACS Nano, 5, 3483-3492(2011).

    [14] H ZHANG, X LV, Y LI. P25-graphene composite as a high performance photocatalyst. ACS Nano, 4, 380-386(2010).

    [15] Q XIANG, J YU. Graphene-based photocatalysts for hydrogen generation. The Journal of Physical Chemistry Letters, 4, 753-759(2013).

    [16] B ZHENG, J WANG, B WANG F. Low-loading cobalt coupled with nitrogen-doped porous graphene as excellent electrocatalyst for oxygen reduction reaction. Journal of Materials Chemistry A, 2, 9079-9084(2014).

    [17] Z ALAM, B VERMA, A S K SINHA. Creation of heterojunction in CdS supported on N, S-rGO for efficient charge separation for photo-reduction of water to hydrogen. International Journal of Hydrogen Energy, 45, 4095-4112(2020).

    [18] P ZHENG, W ZHOU, Y WANG. N-doped graphene-wrapped TiO2 nanotubes with stable surface Ti3+ for visible-light photocatalysis. Applied Surface Science, 512, 144549(2020).

    [19] Q ZHAO, J SUN, S LI. Single nickel atoms anchored on nitrogen-doped graphene as a highly active cocatalyst for photocatalytic H2 evolution. ACS Catalysis, 8, 11863-11874(2018).

    [20] G SADANANDAM, K LALITHA, D KUMARI V. Cobalt doped TiO2: a stable and efficient photocatalyst for continuous hydrogen production from glycerol: water mixtures under solar light irradiation. International Journal of Hydrogen Energy, 38, 9655-9664(2013).

    [21] T MA Y, L LI Q. Preparation and characterization of TiO2/Co3O4 nanocomposites and their photocatalytic activity for hydrogen evolution. Journal of Inorganic Materials, 31, 841-844(2016).

    [22] C HAN, T ZHANG, Q CAI. 0D CoP cocatalyst/2D g-C3N4 nanosheets: an efficient photocatalyst for promoting photocatalytic hydrogen evolution. Journal of the American Ceramic Society, 102, 5484-5493(2019).

    [23] H CHEN, D JIANG, Z SUN. Cobalt nitride as an efficient cocatalyst on CdS nanorods for enhanced photocatalytic hydrogen production in water. Catalysis Science & Technology, 7, 1515-1522(2017).

    [24] X CAO, T WANG, L JIAO. Transition-metal (Fe, Co, and Ni)- based nanofiber electrocatalysts for water splitting. Advanced Fiber Materials, 3, 210-228(2021).

    [25] L YI, F LAN, J LI. Efficient noble-metal-free Co-NG/TiO2 photocatalyst for H2 evolution: synergistic effect between single- atom Co and N-doped graphene for enhanced photocatalytic activity. ACS Sustainable Chemistry & Engineering, 6, 12766-12775(2018).

    [26] F ZHAI L, Y KONG S, H ZHANG. Facile synthesis of Co-N-rGO composites as an excellent electrocatalyst for oxygen reduction reaction. Chemical Engineering Science, 194, 45-53(2019).

    [27] Q LIU, C ZENG, Z XIE. Cobalt@nitrogen-doped bamboo- structured carbon nanotube to boost photocatalytic hydrogen evolution on carbon nitride. Applied Catalysis B: Environmental, 254, 443-451(2019).

    [28] Z CHEN, Y HA, Y LIU. In situ formation of cobalt nitrides/ graphitic carbon composites as efficient bifunctional electrocatalysts for overall water splitting. ACS Applied Materials & Interfaces, 10, 7134-7144(2018).

    [29] K ODA, T YOSHIO, K ODA. Preparation of Co-N films by RF- sputtering. Journal of Materials Science, 22, 2729-2733(1987).

    [30] Z RONG, C DONG, S ZHANG. Co5.47N loaded N-doped carbon as an efficient bifunctional oxygen electrocatalyst for a Zn-air battery. Nanoscale, 12, 6089-6095(2020).

    [31] D YIN, G HUANG, Q SUN. RGO/Co3O4 composites prepared using GO-MOFs as precursor for advanced lithium-ion batteries and supercapacitors electrodes. Electrochimica Acta, 215, 410-419(2016).

    [32] D XU, L LI, R HE. Noble metal-free RGO/TiO2 composite nanofiber with enhanced photocatalytic H2-production performance. Applied Surface Science, 434, 620-625(2018).

    [33] L YANG, Y LIU, L WANG. Co5.47N/rGO@NF as a high- performance bifunctional catalyst for urea-assisted hydrogen evolution. Catalysis Letters, 149, 3111-3118(2019).

    [34] X QIAN, H WANG, R WANG. Dual-carbon coupled Co5.47N composites for capacitive lithium-ion storage. Journal of Colloid and Interface Science, 587, 192-201(2021).

    [35] X LI, Q ZHANG, H WANG. (Ga1-xZnx)(N1-xOx)-rGO composites with enhanced photocatalytic performance for visible- light driven water splitting. Applied Surface Science, 358, 57-62(2015).

    [36] W HAN, L CHEN, W SONG, 236, 212-221(2018).

    Lin AN, Hao WU, Xin HAN, Yaogang LI, Hongzhi WANG, Qinghong ZHANG. Non-precious Metals Co5.47N/Nitrogen-doped rGO Co-catalyst Enhanced Photocatalytic Hydrogen Evolution Performance of TiO2[J]. Journal of Inorganic Materials, 2022, 37(5): 534
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