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124                                Multifunctional Photocatalytic Materials for Energy

          [44]  H.  Yan, Soft-templating synthesis of mesoporous graphitic carbon nitride with en-
             hanced photocatalytic H 2  evolution under visible light, Chem. Commun. 48 (28) (2012)
             3430–3432.
          [45]  J. Feng, T. Chen, S. Liu, Q. Zhou, Y. Ren, Y. Lv, et al., Improvement of g-C 3 N 4  photocat-
             alytic properties using the Hummers method, J. Colloid Interface Sci. 479 (2016) 1–6.
          [46]  S. Yang, Y. Gong, J. Zhang, L. Zhan, L. Ma, Z. Fang, et al., Exfoliated graphitic carbon
             nitride nanosheets as efficient catalysts for hydrogen evolution under visible light, Adv.
             Mater. 25 (17) (2013) 2452–2456.
          [47]  J. Xu, L. Zhang, R. Shi, Y. Zhu, Chemical exfoliation of graphitic carbon nitride for effi-
             cient heterogeneous photocatalysis, J. Mater. Chem. A 1 (46) (2013) 14766.
          [48]  T. Sano, S. Tsutsui, K. Koike, T. Hirakawa, Y. Teramoto, N. Negishi, et al., Activation of
             graphitic carbon nitride (g-C 3 N 4 ) by alkaline hydrothermal treatment for photocatalytic
             NO oxidation in gas phase, J. Mater. Chem. A 1 (21) (2013) 6489.
          [49]  Y. Zheng, L. Lin, X. Ye, F. Guo, X. Wang, Helical graphitic carbon nitrides with photo-
             catalytic and optical activities, Angew. Chem. 53 (44) (2014) 11926–11930.
          [50]  H. Zhang, W. Tian, L. Zhou, H. Sun, M. Tade, S. Wang, Monodisperse Co 3 O 4  quantum
             dots on porous carbon nitride nanosheets for enhanced visible-light-driven water oxi-
             dation. Appl. Catal. B Environ. (2017) https://doi.org/10.1016/j.apcatb.2017.03.028. in
             press.
          [51]  B. Yue, Q. Li, H. Iwai, T. Kako, J. Ye, Hydrogen production using zinc-doped carbon ni-
             tride catalyst irradiated with visible light, Sci. Technol. Adv. Mater. 12 (3) (2011) 034401.
          [52]  L.F. Gao, T. Wen, X. JY, X.P. Zhai, M. Zhao, H. GW, et al., Iron-doped carbon nitride-type
             polymers as homogeneous organocatalysts for visible light-driven hydrogen evolution,
             ACS Appl. Mater. Interfaces 8 (1) (2016) 617–624.
          [53]  L.  Ge, C.  Han, J.  Liu, Y.  Li, Enhanced visible light photocatalytic activity of novel
             polymeric g-C 3 N 4  loaded with Ag nanoparticles, Appl. Catal. A Gen. 409–410 (2011)
             215–222.
          [54]  P.-W. Chen, K. Li, Y. Y-X, W.-D. Zhang, Cobalt-doped graphitic carbon nitride photocat-
             alysts with high activity for hydrogen evolution, Appl. Surf. Sci. 392 (2017) 608–615.
          [55]  Y. Guo, T. Chen, Q. Liu, Z. Zhang, X. Fang, Insight into the enhanced photocatalytic
             activity of potassium and iodine codoped graphitic carbon nitride photocatalysts, J. Phys.
             Chem. C 120 (44) (2016) 25328–25337.
          [56]  M. Fan, C. Song, T. Chen, X. Yan, D. Xu, W. Gu, et al., Visible-light-drived high pho-
             tocatalytic activities of Cu/g-C 3 N 4  photocatalysts for hydrogen production, RSC Adv. 6
             (41) (2016) 34633–34640.
          [57]  C. Liu, K. Wu, G. Meng, J. Wu, B. Peng, J. Hou, et al., Explore the properties and pho-
             tocatalytic performance of iron-doped g-C 3 N 4  nanosheets decorated with Ni2P, J. Mol.
             Catal. 437 (2017) 80–88.
          [58]  J. Ran, T.Y. Ma, G. Gao, X.-W.  Du, S.Z. Qiao, Porous P-doped graphitic carbon ni-
             tride nanosheets for synergistically enhanced visible-light photocatalytic H 2  production,
             Energy Environ. Sci. 8 (12) (2015) 3708–3717.
          [59]  J. Li, B. Shen, Z. Hong, B. Lin, B. Gao, Y. Chen, A facile approach to synthesize novel
             oxygen-doped g-C 3 N 4  with superior visible-light photoreactivity, Chem. Commun. 48
             (98) (2012) 12017–12019.
          [60]  G. Liu, P. Niu, C.H. Sun, S.C. Smith, Z.G. Chen, L. GQ, H.M. Cheng, Unique electronic
             structure induced high photoreactivity of sulfur-doped graphitic C 3 N 4 , J. Am. Chem. Soc.
             132 (2010) 11642–11648.
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