65. Zhu M-S, Chen P-L, Liu M-H (2013) High-performance visible-light-driven plasmonic
photocatalysts Ag/AgCl with controlled size and shape using graphene oxide as capping
agent and catalyst promoter. Langmuir 29:9259–9268
66. Shahzad A, Kim W-S, Yu T (2016) A facile synthesis of Ag/AgCl hybrid nanostructures with
tunable morphologies and compositions as advanced visible light plasmonic photocatalysts.
Dalton Trans 45:9158–9165
67. Wang H, Li Y, Li C, He L, Guo L (2012) Facile synthesis of AgBr nanocubes for highly
efficient visible light photocatalysts. CrystEngComm 14:7563–7566
68. An C-H, Peng S, Sun Y-G (2010) Facile synthesis of sunlight-driven AgCl:Ag plasmonic
nanophotocatalyst. Adv Mater 22:2570–2574
69. Zhu M-S, Chen P-L, Ma W-H, Lei B, Liu M-H (2012) Template-free synthesis of cube-like
Ag/AgCl nanostructures via a direct-precipitation protocol: highly efficient sunlight-driven
plasmonic photocatalysts. ACS Appl Mater Interfaces 4:6386–6392
70. Han L, Wang P, Zhu C-Z, Zhai Y-M, Dong S-J (2011) Facile solvothermal synthesis of cubelike Ag@AgCl: a highly efficient visible light photocatalyst. Nanoscale 3:2931–2935
71. Chen D-L, Yoo S-H, Huang Q-S, Ali G, Cho S-O (2012) Sonochemical synthesis of Ag/AgCl
nanocubes and their efficient visible-light-driven photocatalytic performance. Chem Eur J
18:5192–5200
72. Wang H, Gao J, Guo T-Q, Wang R-M, Guo L, Liu Y, Li J-L (2012) Facile synthesis of AgBr
nanoplates with exposed {111} facets and enhanced photocatalytic properties. Chem Commun
48:275–277
73. Shen Y-F, Chen P-L, Xiao D, Chen C-C, Zhu M-S, Li T-S, Ma W-G, Liu M-H (2015)
Spherical and sheetlike Ag/AgCl nanostructures: interesting photocatalysts with unusual facetdependent yet substrate-sensitive reactivity. Langmuir 31:602–610
74. Lou Z-Z, Huang B-B, Qin X-Y, Zhang X-Y, Wang Z-Y, Zheng Z-K, Cheng H-F, Wang P, Dai
Y (2011) One-step synthesis of AgBr microcrystals with different morphologies by
ILs-assisted hydrothermal method. CrystEngComm 13:1789–1793
75. Zhang H-B, Lu Y-G, Liu H, Fang J-Z (2015) One-pot synthesis of high-index faceted AgCl
nanocrystals with trapezohedral, concave hexoctahedral structures and their photocatalytic
activity. Nanoscale 7:11591–11601
76. Moniz S-J-A, Shevlin S-A, Martin D-J, Guo Z-X, Tang J-W (2015) Visible-light driven
heterojunction photocatalysts for water splitting-a critical review. Energy Environ Sci
8:731–759
77. Cheng H-F, Wang W-J, Huang B-B, Wang Z-Y, Zhan J, Qin X-Y, Zhang X-Y, Dai Y (2013)
Tailoring AgI nanoparticles for the assembly of AgI/BiOI hierarchical hybrids with sizedependent photocatalytic activities. J Mater Chem A 1:7131–7136
78. Chen L-L, Jiang D-L, He T, Wu Z-D, Chen M (2013) In-situ ion exchange synthesis of
hierarchical AgI/BiOI microsphere photocatalyst with enhanced photocatalytic properties.
CrystEngComm 15:7556–7563
79. An C-H, Jiang W, Wang J-Z, Wang S-T, Ma Z-Z, Li Y-P (2013) Synthesis of threedimensional AgI@TiO 2 nanoparticles with improved photocatalytic performance. Dalton
Trans 42:8796–8801
80. Wu D-Y, Long M-C (2011) Realizing visible-light-induced self-cleaning property of cotton
through coating N-TiO 2 film and loading AgI particles. ACS Appl Mater Interfaces
3:4770–4774
81. Song J-M, Zhang J, Ni J-J, Niu H-L, Mao C-J, Zhang S-Y, Shen Y-H (2014) One-pot synthesis
of ZnO decorated with AgBr nanoparticles and its enhanced photocatalytic properties.
CrystEngComm 16:2652–2659
82. Wang D-J, Guo L, Zhen Y-Z, Yue L-L, Xue G-L, Fu F (2014) AgBr quantum dots decorated
mesoporous Bi 2 WO 6 architectures with enhanced photocatalytic activities for methylene blue.
J Mater Chem A 2:11716–11727
References
339
photocatalysts Ag/AgCl with controlled size and shape using graphene oxide as capping
agent and catalyst promoter. Langmuir 29:9259–9268
66. Shahzad A, Kim W-S, Yu T (2016) A facile synthesis of Ag/AgCl hybrid nanostructures with
tunable morphologies and compositions as advanced visible light plasmonic photocatalysts.
Dalton Trans 45:9158–9165
67. Wang H, Li Y, Li C, He L, Guo L (2012) Facile synthesis of AgBr nanocubes for highly
efficient visible light photocatalysts. CrystEngComm 14:7563–7566
68. An C-H, Peng S, Sun Y-G (2010) Facile synthesis of sunlight-driven AgCl:Ag plasmonic
nanophotocatalyst. Adv Mater 22:2570–2574
69. Zhu M-S, Chen P-L, Ma W-H, Lei B, Liu M-H (2012) Template-free synthesis of cube-like
Ag/AgCl nanostructures via a direct-precipitation protocol: highly efficient sunlight-driven
plasmonic photocatalysts. ACS Appl Mater Interfaces 4:6386–6392
70. Han L, Wang P, Zhu C-Z, Zhai Y-M, Dong S-J (2011) Facile solvothermal synthesis of cubelike Ag@AgCl: a highly efficient visible light photocatalyst. Nanoscale 3:2931–2935
71. Chen D-L, Yoo S-H, Huang Q-S, Ali G, Cho S-O (2012) Sonochemical synthesis of Ag/AgCl
nanocubes and their efficient visible-light-driven photocatalytic performance. Chem Eur J
18:5192–5200
72. Wang H, Gao J, Guo T-Q, Wang R-M, Guo L, Liu Y, Li J-L (2012) Facile synthesis of AgBr
nanoplates with exposed {111} facets and enhanced photocatalytic properties. Chem Commun
48:275–277
73. Shen Y-F, Chen P-L, Xiao D, Chen C-C, Zhu M-S, Li T-S, Ma W-G, Liu M-H (2015)
Spherical and sheetlike Ag/AgCl nanostructures: interesting photocatalysts with unusual facetdependent yet substrate-sensitive reactivity. Langmuir 31:602–610
74. Lou Z-Z, Huang B-B, Qin X-Y, Zhang X-Y, Wang Z-Y, Zheng Z-K, Cheng H-F, Wang P, Dai
Y (2011) One-step synthesis of AgBr microcrystals with different morphologies by
ILs-assisted hydrothermal method. CrystEngComm 13:1789–1793
75. Zhang H-B, Lu Y-G, Liu H, Fang J-Z (2015) One-pot synthesis of high-index faceted AgCl
nanocrystals with trapezohedral, concave hexoctahedral structures and their photocatalytic
activity. Nanoscale 7:11591–11601
76. Moniz S-J-A, Shevlin S-A, Martin D-J, Guo Z-X, Tang J-W (2015) Visible-light driven
heterojunction photocatalysts for water splitting-a critical review. Energy Environ Sci
8:731–759
77. Cheng H-F, Wang W-J, Huang B-B, Wang Z-Y, Zhan J, Qin X-Y, Zhang X-Y, Dai Y (2013)
Tailoring AgI nanoparticles for the assembly of AgI/BiOI hierarchical hybrids with sizedependent photocatalytic activities. J Mater Chem A 1:7131–7136
78. Chen L-L, Jiang D-L, He T, Wu Z-D, Chen M (2013) In-situ ion exchange synthesis of
hierarchical AgI/BiOI microsphere photocatalyst with enhanced photocatalytic properties.
CrystEngComm 15:7556–7563
79. An C-H, Jiang W, Wang J-Z, Wang S-T, Ma Z-Z, Li Y-P (2013) Synthesis of threedimensional AgI@TiO 2 nanoparticles with improved photocatalytic performance. Dalton
Trans 42:8796–8801
80. Wu D-Y, Long M-C (2011) Realizing visible-light-induced self-cleaning property of cotton
through coating N-TiO 2 film and loading AgI particles. ACS Appl Mater Interfaces
3:4770–4774
81. Song J-M, Zhang J, Ni J-J, Niu H-L, Mao C-J, Zhang S-Y, Shen Y-H (2014) One-pot synthesis
of ZnO decorated with AgBr nanoparticles and its enhanced photocatalytic properties.
CrystEngComm 16:2652–2659
82. Wang D-J, Guo L, Zhen Y-Z, Yue L-L, Xue G-L, Fu F (2014) AgBr quantum dots decorated
mesoporous Bi 2 WO 6 architectures with enhanced photocatalytic activities for methylene blue.
J Mater Chem A 2:11716–11727
References
339
