SnS2光催化材料研究进展

陈小卫1, 陈虎1, 张铭烨1, 许琦2, 奚新国2*

化工新型材料 ›› 2020, Vol. 48 ›› Issue (1) : 35 -40.

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化工新型材料 ›› 2020, Vol. 48 ›› Issue (1) : 35-40.
综述与专论

SnS2光催化材料研究进展

    陈小卫1, 陈虎1, 张铭烨1, 许琦2, 奚新国2*
作者信息 +

Research progress of SnS2 photocatalytic material

  • Chen Xiaowei1, Chen Hu1, Zhang Mingye1, Xu Qi2, Xi Xinguo2
Author information +
文章历史 +
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摘要

作为典型的金属硫化物半导体结构材料,SnS2因其凭借丰富的边缘结构、巨大的比表面积、良好的化学稳定性和可调控禁带宽度(~2.5eV)等特点,近年来在光催化领域备受关注。结合近年来国内外SnS2材料在光催化领域的研究进展,综述了SnS2的结构、制备方法及光催化研究,特别关注了近年来SnS2材料与其他材料在二元或三元复合光催化领域的研究现状,并对今后光催化SnS2领域的进一步研究前景提出了展望。

Abstract

Tin disulfide (SnS2) is a typical semi-conductor material of metal sulfide.With its virtue characteristics of layered structure and suitable band gap width (~2.5eV),SnS2 has attracted much attention in the fields of photocatalysis.With research progress of SnS2 materials in the field of photocatalysis,the structure,preparation methods and photocatalysis of SnS2 were summarized.Finally,a prospect for the further development of photocatalytic SnS2was provided.

关键词

SnS2 / 层状材料 / 光催化 / 研究进展

Key words

SnS2 / layered material / photocatalysis / research progress

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SnS2光催化材料研究进展[J]. 化工新型材料, 2020, 48(1): 35-40 DOI:

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参考文献

[1] Ong W J,Tan L L,Ng Y H,et al.Graphitic carbon nitride (g-C3N4)-based photocatalysts for artificial photosynthesis and environmental remediation:are we a step closer to achieving sustainability?[J].Chemical Reviews,2016,116(12):7159-7329.
[2] Agbea H,Nyanksonb E,Razaac N,et al.Recent advances in photoinduced catalysis for water splitting and environmental applications[J].Journal of Industrial and Engineering Chemistry,2019,4(72):31-49.
[3] Bora L V,Mewada R K.Visible/solar light active photocatalysts for organic effluent treatment:fundamentals,mechanisms and parametric review[J].Renewable and Sustainable Energy Reviews,2017,76:1393-1421.
[4] Liu C,Zhu H,Zhu Y,et al.Ordered layered N-doped KTiNbO5/g-C3N4,heterojunction with enhanced visible light photocatalytic activity[J].Applied Catalysis B:Environmental,2018,228:54-63.
[5] Friedmann D,Hakki A,Kim H,et al.Heterogeneous photocatalytic organic synthesis:state-of-the-art and future perspectives[J].Green Chemistry,2016,18(20):5391-5411.
[6] Bajorowicz B,Kobylański M P,Gołabiewska A,et al.Quantum dot-decorated semiconductor micro-and nanoparticles:a review of their synthesis,characterization and application in photocatalysis[J].Advances in Colloid and Interface Science,2018,256:352-372.
[7] Han M,Zhu S,Lu S,et al.Recent progress on the photocatalysis of carbon dots:classification,mechanism and applications[J].Nano Today,2018,19:201-218.
[8] Lv X,Zhang H,Chang H.Improved photocatalytic activity of highly ordered TiO2 nanowire arrays for methylene blue degradation[J].Materials Chemistry and Physics,2012,136(2-3):789-795.
[9] Ganesh R S,Durgadevi E,Navaneethan M,et al.Visible light induced photocatalytic degradation of methylene blue and rhodamine B from the catalyst of CdS nanowire[J].Chemical Physics Letters,2017,684:126-134.
[10] Thaweesak S,Lyu M,Peerakiatkhajohn P,et al.Two-dimensional g-C3N4/Ca2Nb2TaO10 nanosheet composites for efficient visible light photocatalytic hydrogen evolution[J].Applied Catalysis B:Environmental,2017,202:184-190.
[11] Yang L,Huang J,Shi L,et al.Sb doped SnO2-decorated porous g-C3N4 nanosheet heterostructures with enhanced photocatalytic activities under visible light irradiation[J].Applied Catalysis B:Environmental,2018,221:670-680.
[12] Peng F,Ni Y,Zhou Q,et al.Construction of ZnO nanosheet arrays within BiVO4 particles on a conductive magnetically driven cilia film with enhanced visible photocatalytic activity[J].Journal of Alloys and Compounds,2017,690:953-960.
[13] Martín-Sómer M,Pablos C,de Diego A,et al.Novel macroporous 3D photocatalytic foams for simultaneous wastewater disinfection and removal of contaminants of emerging concern[J].Chemical Engineering Journal,2019,366:449-459.
[14] Jing L,Xu Y,Zhang M,et al.Novel Ag2S quantum dot modified 3D flower-like SnS2 composites for photocatalytic and photoelectrochemical applications[J].Inorganic Chemistry Frontiers,2018,5(1):63-72.
[15] Li Z Q,Chen X T,Xue Z L.Microwave-assisted synthesis and photocatalytic properties of flower-like Bi2WO6 and Bi2O3-Bi2WO6 composite[J].Journal of Colloid and Interface Science,2013,394:69-77.
[16] Wang L,Xie Y,Liu W,et al.Synthesis of mesoporous core-shell TiO2 microstructures with coexposed {001}/{101} facets:enhanced intrinsic photocatalytic performance[J].Environmental Science and Pollution Research,2018,25(31):31250-31261.
[17] Yan X,Qin J,Ning G,et al.A novel poly (triazine imide) hollow tube/ZnO heterojunction for tetracycline hydrochloride degradation under visible light irradiation[J].Advanced Powder Technology,2019,30(2):359-365.
[18] Kumar V,Kim K H,Park J W,et al.Graphene and its nanocomposites as a platform for environmental applications[J].Chemical Engineering Journal,2017,315:210-232.
[19] Parzinger E,Miller B,Blaschke B,et al.Photocatalytic stability of single- and few-layer MoS2[J].ACS Nano,2015,9(11):11302-11309.
[20] Li X,Xia J,Zhu W,et al.Facile synthesis of few-layered MoS2 modified BiOI with enhanced visible-light photocatalytic activity[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects,2016,511:1-7.
[21] Zhong H,Yang G,Song H,et al.Vertically aligned graphene-like SnS2 ultrathin nanosheet arrays:excellent energy storage,catalysis,photoconduction,and field-emitting performances[J].The Journal of Physical Chemistry C,2012,116(16):9319-9326.
[22] Wu Y,Liu Z,Li Y,et al.Construction of 2D-2D TiO2 nanosheet/layered WS2 heterojunctions with enhanced visible-light-responsive photocatalytic activity[J].Chinese Journal of Catalysis,2019,40(1):60-69.
[23] Wang X,Zhou C,Wang W,et al.CdSe nanoparticle-sensitized ZnO sheets for enhanced photocatalytic hydrogen evolution rates[J].Journal of Alloys and Compounds,2018,747:826-833.
[24] Yi Y,Yu X F,Zhou W,et al.Two-dimensional black phosphorus:synthesis,modification,properties,and applications[J].Materials Science and Engineering:R:Reports,2017,120:1-33.
[25] Hou C,Zhang Y,Li J,et al.In-situ hydrothermal synthesis of CeO2/SnS2 heterojunction for use as a new efficient visible-light-driven photocatalyst[J].Materials Letters,2018,213:154-157.
[26] Tang H,Qi X,Han W,et al.SnS2 nanoplates embedded in 3D interconnected graphene network as anode material with superior lithium storage performance[J].Applied Surface Science,2015,355:7-13.
[27] Kale S B,Kalubarme R S,Mahadadalkar M A,et al.Hierarchical 3D ZnIn2 S4/graphene nano-heterostructures:their in situ fabrication with dual functionality in solar hydrogen production and as anodes for lithium ion batteries[J].Physical Chemistry Chemical Physics,2015,17(47):31850-31861.
[28] Zheng J,Xiong X,Wang G,et al.SnS2 nanoparticles anchored on three-dimensional reduced graphene oxide as a durable anode for sodium ion batteries[J].Chemical Engineering Journal,2018,339:78-84.
[29] Liu Y,Qiu G,Kong D,et al.Strain effect on SnS2 nanoribbons:robust direct bandgap of zigzag-edge and sensitive indirect semiconductor with armchair-edge states[J].Superlattices and Microstructures,2017,111:480-486.
[30] Liu X,Zhao H,Kulka A,et al.Characterization of the physicochemical properties of novel SnS2 with cubic structure and diamond-like Sn sublattice[J].Acta Materialia,2015,82:212-223.
[31] Zhang J,Zhang L,Shi Y,et al.Anatase TiO2 nanosheets with coexposed {101} and {001} facets coupled with ultrathin SnS2 nanosheets as a face-to-face npn dual heterojunction photocatalyst for enhancing photocatalytic activity[J].Applied Surface Science,2017,420:839-848.
[32] Li Y Y,Wang J G,Sun H H,et al.Heterostructured SnS2/SnO2 nanotubes with enhanced charge separation and excellent photocatalytic hydrogen production[J].International Journal of Hydrogen Energy,2018,43(31):14121-14129.
[33] Yan C,Xue X,Zhang W,et al.Well-designed Te/SnS2/Ag artificial nanoleaves for enabling and enhancing visible-light driven overall splitting of pure water[J].Nano Energy,2017,39:539-545.
[34] Deng L,Zhu Z,Liu L,et al.Synthesis of Ag2O and Ag co-modified flower-like SnS2 composites with enhanced photocatalytic activity under solar light irradiation[J].Solid State Sciences,2017,63:76-83.
[35] Meng H,Wang T,Chen H,et al.BiOCl/SnS2 core-shell photocatalyst for the degradation of organic pollutants[J].Nano,2016,11(8):1650087.
[36] Li J,Du X,Yao L,et al.Synthesis of SnS2/WO3 nanocomposite with enhanced photocatalytic activity[J].Materials Letters,2014,121:44-46.
[37] Luo J,Li R,Chen Y,et al.Rational design of Z-scheme LaFeO3/SnS2 hybrid with boosted visible light photocatalytic activity towards tetracycline degradation[J].Separation and Purification Technology,2019,210:417-430.
[38] Dai K,Lv J,Zhang J,et al.Band structure engineering design of g-C3N4/ZnS/SnS2 ternary heterojunction visible-light photocatalyst with ZnS as electron transport buffer material[J].Journal of Alloys and Compounds,2019,778:215-223.
[39] Kiruthigaa G,Manoharan C,Raju C,et al.Solid state synthesis and spectral investigations of nanostructure SnS2[J].Spectrochimica Acta Part A:Molecular and Biomolecular Spectroscopy,2014,129:415-420.
[40] Wei H,Hou C,Zhang Y,et al.Scalable low temperature in air solid phase synthesis of porous flower-like hierarchical nanostructure SnS2 with superior performance in the adsorption and photocatalytic reduction of aqueous Cr(Ⅵ)[J].Separation and Purification Technology,2017,189:153-161.
[41] Zhang Y C,Li J,Zhang M,et al.Size-tunable hydrothermal synthesis of SnS2 nanocrystals with high performance in visible light-driven photocatalytic reduction of aqueous Cr(Ⅵ)[J].Environmental Science & Technology,2011,45(21):9324-9331.
[42] Xia J,Li G,Mao Y,et al.Hydrothermal growth of SnS2 hollow spheres and their electrochemical properties[J].CrystEngComm,2012,14(13):4279-4283.
[43] Liu H,Su Y,Chen P,et al.Microwave-assisted solvothermal synthesis of 3D carnation-like SnS2 nanostructures with high visible light photocatalytic activity[J].Journal of Molecular Catalysis A:Chemical,2013,378:285-292.
[44] Su G,Hadjiev V G,Loya P E,et al.Chemical vapor deposition of thin crystals of layered semiconductor SnS2 for fast photodetection application[J].Nano Letters,2014,15(1):506-513.
[45] Huang Y,Deng H X,Xu K,et al.Highly sensitive and fast phototransistor based on large size CVD-grown SnS2 nanosheets[J].Nanoscale,2015,7(33):14093-14099.
[46] Li Q,Wei A,Guo Z,et al.Chemical vapor deposition of two-dimensional SnS2 nanoflakes and flower-shaped SnS2[J].Journal of Materials Science:Materials in Electronics,2018,29(18):16057-16063.
[47] Chen L,Liu E,Teng F,et al.Two-dimensional SnS2 nanosheets arrays as photoelectrode by low temperature CVD method for efficient photoelectrochemical water splitting[J].Applied Surface Science,2019,467:698-707.
[48] Vijayakumar K,Sanjeeviraja C,Jayachandran M,et al.Characterization of Tin disulphide thin films prepared at different substrate temperature using spray pyrolysis technique[J].Journal of Materials Science:Materials in Electronics,2011,22(8):929-935.
[49] Kumar K D A,Valanarasu S,Tamilnayagam V,et al.Structural,morphological and optical properties of SnS2 thin films by nebulized spray pyrolysis technique[J].Journal of Materials Science:Materials in Electronics,2017,28(19):14209-14216.
[50] Anitha N,Anitha M,Mohamed J R,et al.Influence of substrate temperature on the physical properties of SnS2 thin films prepared using nebulized spray pyrolysis technique[J].Journal of Materials Science:Materials in Electronics,2018,29(13):11529-11539.
[51] Arulanantham A M S,Valanarasu S,Jeyadheepan K,et al.Effect of sulfur concentration on the properties of tin disulfide thin films by nebulizer spray pyrolysis technique[J].Journal of Materials Science:Materials in Electronics,2017,28(24):18675-18685.
[52] Liu X,Zhao H,Kulka A,et al.Characterization of the physicochemical properties of novel SnS2 with cubic structure and diamond-like Sn sublattice[J].Acta Materialia,2015,82:212-223.
[53] Chaki S H,Deshpande M P,Trivedi D P,et al.Wet chemical synthesis and characterization of SnS2,nanoparticles[J].Applied Nanoscience,2013,3(3):189-195.
[54] Shi C,Chen Z,Shi G,et al.Influence of annealing on characteristics of tin disulfide thin films by vacuum thermal evaporation[J].Thin Solid Films,2012,520(15):4898-4901.
[55] Zhang Y C,Du Z N,Li K W,et al.Size-controlled hydrothermal synthesis of SnS2 nanoparticles with high performance in visible light-driven photocatalytic degradation of aqueous methyl orange[J].Separation & Purification Technology,2011,81(1):101-107.
[56] Zhao Wenhua,Wei Zhiqiang,Zhang Li,et al.Cr doped SnS2 nanoflowers:preparation,characterization and photocatalytic decolorization[J].Materials Science in Semiconductor Processing,2018,88:173-180.
[57] Liu J H,Huang G F,Huang W Q,et al.Morphology-controlled SnS2 nanostructures synthesized by refluxing method with high photocatalytic activity[J].Materials Letters,2015,161:480-483.
[58] Sun Y,Cheng H,Gao S,et al.Freestanding tin disulfide single-layers realizing efficient visible-light water splitting[J].Angewandte Chemie,2012,124(35):8857-8861.
[59] Liu J,Jing L,Gao G,et al.Ag2S quantum dots in situ coupled to hexagonal SnS2 with enhanced photocatalytic activity for MO and Cr(Ⅵ) removal[J].RSC Advances,2017,7(74):46823-46831.
[60] Song Y,Gu J,Xia K,et al.Construction of 2D SnS2/g-C3N4 Z-scheme composite with superior visible-light photocatalytic performance[J].Applied Surface Science,2019,467:56-64.
[61] Fan Y,Luo Q,Liu G,et al.Synthesis of SnO2@SnS2 core-shell nanorods by double crucible method and their photocatalysis[J].Journal of Materials Science:Materials in Electronics,2014,25(9):3801-3806.
[62] Xu Y,Wang D,Xie M,et al.Novel broad spectrum light responsive PPy/hexagonal-SnS2 photocatalyst for efficient photoreduction of Cr(Ⅵ)[J].Materials Research Bulletin,2019,112:226-235.
[63] Shi Y,Chen Y,Tian G,et al.Hierarchical Ag/Ag2S/CuS ternary heterostructure composite as an efficient visible-light photocatalyst[J].ChemCatChem,2015,7(11):1684-1690.

基金资助

国家自然科学基金(51772258);国家重点研发计划项目(2016YFC0209202);江苏省高校自然科学研究重大项目(15KJA430007);住建部科研项目(2018-K1-004)

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