References

  1. H. Cong, X. Ren, P. Wang, H. Yu, Macroscopic multifunctional graphene-based hydrogels and aerogels by a metal ion induced self-assembly process, ACS Nano, 6(3) (2012) 2693– 2703.
  2. Y. Lei, F. Chen, Y. Luo, L. Zhang, Three-dimensional magnetic graphene oxide foam/Fe3O4, nanocomposite as an efficient absorbent for Cr (VI) removal, J. Mater. Sci., 49(12) (2014) 4236–4245.
  3. R. Xu, G. Zhou, Y. Tang, L. Chu, C. Liu, Z. Zeng, S. Luo, New double network hydrogel adsorbent: Highly efficient removal of Cd (II) and Mn (II) ions in aqueous solution, Chem. Eng. J., 275 (2015) 179–188.
  4. M. Ge, C. Cao, J. Huang, S. Li, Z. Chen, K. Zhang, S. Al-Salem, Y. Lai, A review of one-dimensional TiO2 nanostructured materials for environmental and energy applications, J. Mater. Chem. A, 4(18) (2016) 6772–6801.
  5. G. Sharma, A. Kumar, M. Naushad, D. Pathania, M. Sillanpää, Polyacrylamide (IV) @ Zr (II) vanadophosphate nanocomposite: Ion exchange properties, antibacterial activity, and photocatalytic behavior, J. Ind. Eng. Chem., 33 (2016) 201–208.
  6. D. Pathania, R. Katwal, G. Sharma, M. Naushad, M. Rizwan Khan, A. Al-Muhtaseb, Novel guar gum/Al2O3 nanocomposite as an effective photocatalyst for the degradation of malachite green dye, Int. J. Biol. Macromol., 87 (2016) 366–374.
  7. F. Chen, W. An, L. Liu, Y. Liang, W. Cui, Highly efficient removal of bisphenol A by a three-dimensional graphene hydrogel-AgBr@rGO exhibiting adsorption/photocatalysis synergy, Appl. Catal. B Environ., 217 (2017) 65–80.
  8. W. Lü, J. Chen, Y. Wu, L. Duan, Y. Yang, X. Ge, Graphene-enhanced visible-light photocatalysis of large-sized CdS particles for wastewater treatment, Nanoscale Res. Lett., 9(1) (2014) 148.
  9. Y. Li, H. Zhang, P. Liu, D. Wang, Y. Li, H. Zhao, Cross-linked g-C3N4/rGO nanocomposites with tunable band structure and enhanced visible light photocatalytic activity, Small, 9(19) (2013) 3336–3344.
  10. Y. Li, W. Cui, L. Liu, R. Zong, W. Yao, Y. Liang, Y. Zhu, Removal of Cr (VI) by 3D TiO2-graphene hydrogel via adsorption enriched with photocatalytic reduction, Appl. Catal. B Environ., 199 (2016) 412–423.
  11. G.C. Yadav, G. Sharma, S. Kumar, V. Singh, Performance study of metallic clad planar waveguide sensors in presence of graphene layer, Optik– Int. J. Light Electron Optics, 147 (2017) 366–372.
  12. Z. Nan, M.Q. Yang, S. Liu, Y. Sun, Y. Xu, Waltzing with the versatile platform of graphene to synthesize composite photocatalysts, Chem. Rev., 115(18) (2015) 10307–10377.
  13. W. Jiang, Y. Zhu, G. Zhu, Z. Zhang, X. Chen, W. Yao, Three-dimensional photocatalysts with network structure, J. Mater. Chem. A, 5(12) (2017) 5661–5679.
  14. J. Yu, J. Zhang, S. Liu, Ion-exchange synthesis and enhanced visible-light photoactivity of CuS/ZnS nanocomposite hollow spheres, J. Phys. Chem. C, 114(32) (2010) 13642–13649.
  15. S.B. Aziz, R.T. Abdulwahid, H.A. Rsaul, H.M. Ahmed, In situ synthesis of CuS nanoparticle with a distinguishable SPR peak in NIR region, J. Mater. Sci. Mater. Electron., 27(5) (2016) 4163–4171.
  16. W.S. Hummers, R.E. Offeman, Preparation of graphitic oxide, J. Am. Chem. Soc., 80(6) (1958) 1339.
  17. S.W. Lee, C. Mattevi, M. Chhowalla, R.M. Sankaran, Plasma-assisted reduction of graphene oxide at low temperature and atmospheric pressure for flexible conductor applications, J. Phys. Chem. Lett., 3(6) (2012) 772–777.
  18. J. Qian, K. Wang, Q. Guan, H. Li, H. Xu, Q. Liu, W. Liu, B. Qiu, Enhanced wet hydrogen peroxide catalytic oxidation performances based on CuS nanocrystals/reduced graphene oxide composites, Appl. Surf. Sci., 288 (2014) 633–640.
  19. Q.W. Shu, J. Lan, M.X. Gao, J. Wang, C.Z. Huang, Controlled synthesis of CuS caved superstructures and their application to the catalysis of organic dye degradation in the absence of light, Cryst. Eng. Comm., 17 (2015) 1374–1380.
  20. L.L. Li, P.N. Zhu, S.J. Peng, M. Srinivasan, Q.Y. Yan, A.S. Nair, B. Liu, S. Samakrishna, Controlled growth of CuS on electrospun carbon nanofibers as an efficient counter electrode for quantum dot-sensitized solar cells, J. Phys. Chem. C, 118 (2014) 16526–16535.
  21. J. Shi, X. Zhou, Y. Liu, Q. Su, J. Zhang, G. Du, Sonochemical synthesis of CuS/reduced graphene oxide nanocomposites with enhanced absorption and photocatalytic performance, Mater. Lett., 126 (2014) 220–223.
  22. S. Dutta, C. Ray, S. Mallick, S. Sarkar, R. Sahoo, Y. Negishi, T. Pal, Synthesis of a flower-like CuS/ZnS nanocomposite decorated on reduced graphene oxide and its photocatalytic performance, RSC Adv., 5 (2015) 36185–36191.
  23. P. Liu, Y. Huang, J. Yan, Y. Yang, Y Zhao, Construction of CuS nanoflakes vertically aligned on magnetically decorated graphene and their enhanced microwave absorption properties, ACS Appl. Mater. Interf., 8(8) (2016) 5536–5546.
  24. L. Yang, X. Guan, G.S. Wang, X. Guan, B. Jia, Synthesis of ZnS/CuS nanospheres loaded on reduced graphene oxide as high-performance photocatalysts under simulated sunlight irradiation, New J. Chem., 41(13) (2017) 5732–5744.
  25. K.R. Nemade, S.A. Waghuley, Band gap engineering of CuS nanoparticles for artificial photosynthesis, Mat. Sci. Semicon. Proc., 39 (2015) 781–785.
  26. X. Chen, Q. Chen, W. Jiang, Z. Wei, Y. Zhu, Separation-free TiO2-graphene hydrogel with 3D network structure for efficient photo-electrocatalytic mineralization, Appl. Catal. B Environ., 211 (2017) 106–113.
  27. Y. Sun, Q. Wu, G. Shi, Graphene based new energy materials, Energy Environ. Sci., 4(4) (2011) 1113–1132.
  28. A.C. Ferrari, J. Meyer, V. Scardaci, C. Casiraghi, M. Lazzeri, F. Mauri, S. Piscanec, D. Jiang, K.S. Novoselov, S. Roth, A.K. Geim, Raman spectrum of graphene and graphene layers, Phys. Rev. Lett., 97(18) (2006) 187401–187405.
  29. N. Lamaison, C.L. Ong, J.B. Marcinichen, J.R. Thome, Twophase mini-thermosyphon electronics cooling: dynamic modeling, experimental validation and application to 2U servers, Appl. Thermal Eng., 110 (2016) 481–494.
  30. A. Kaniyoor, T.T. Baby, T. Arockiadoss, N. Rajalakshmi, S. Ramaprabhu, Wrinkled graphenes: a study on the effects of synthesis parameters on exfoliation-reduction of graphite oxide, J. Phys. Chem. C, 115(36) (2011) 17660–17669.
  31. H. Zhao, S.U. Fang, X. Fan, H. Yu, D. Wu, X. Quan, Graphene-TiO2 composite photocatalyst with enhanced photocatalytic performance, Chinese J. Catal., 33(4–6) (2012) 777–782.
  32. Y. Fan, W. Ma, D. Han, S. Gan, X. Dong, L. Niu, Convenient recycling of 3D AgX/graphene aerogels (X = Br, Cl) for efficient photocatalytic degradation of water pollutants, Adv. Mater., 27 (2015) 3767–3773.
  33. C. Ding, D. Su, W. Ma, Y. Zhao, D. Yan, J. Li, H. Jin, Design of hierarchical CuS/graphene architectures with enhanced lithium storage capability, Appl. Surf. Sci., 403 (2017) 1–8.
  34. C. Xiong, X. Deng, J. Li, Preparation and photodegradation activity of high aspect ratio rutile TiO2, single crystal nanorods, Appl. Catal. B Environ., 94(3–4) (2010) 234–240.
  35. Y. Hou, F. Zuo, A.P. Dagg, J. Liu, P. Feng, Branched WO3 nanosheet array with layered C3N4 heterojunctions and CoOx nanoparticles as a flexible photoanode for efficient photoelectrochemical water oxidation, Adv. Mater., 26(29) (2014) 5043–5049.