46
4 Hydrogen Sulfide Decomposition and Nanotechnology
5. Zhao Y, Biggs TD, Xian M (2014) Hydrogen sulfide (H 2 S) releasing agents: chemistry and
biological applications. Chem Commun 50(80):11788–11805
6. Emami-Taba L, Irfan MF, Daud WMAW, Chakrabarti MH (2013) Fuel blending effects on the
co-gasification of coal and biomass–a review. Biomass Bioenergy 57:249–263
7. Mahmood Q, Zheng P, Cai J, Hayat Y, Hassan MJ, Wu D-l, Hu B-l (2007) Sources of sulfide in
waste streams and current biotechnologies for its removal. J Zhejiang Univ-Sci A 8(7):1126–
1140
8. Hawboldt KA, Monnery WD, Svrcek WY (2000) New experimental data and kinetic rate
expression for H2S pyrolysis and re-association. Chem Eng Sci 55(5):957–966
9. Zaman J, Chakma A (1995) Production of hydrogen and sulfur from hydrogen sulfide. Fuel
Process Technol 41(2):159–198
10. Cao D, Adesina AA (1999) Fluidised bed reactor studies of H2S decomposition over supported
bimetallic Ru catalysts. Catal Today 49(1–3):23–31
11. Guldal NO, Figen HE, Baykara SZ (2015) New catalysts for hydrogen production from H2S:
preliminary results. Int J Hydrogen Energy 40(24):7452–7458
12. Maloka IE, Aliwi SM, Naman SA (2006) Thermal decomposition of hydrogen sulphide by
cadmium chalcogens. Pet Sci Technol 24(1):103–112
13. Weaver D, Winnick J (1987) Electrochemical Removal of H 2 S from Hot Gas Streams:
Nickel/Nickel-Sulfide Cathode Performance. J Electrochem Soc 134(10):2451
14. Gibson AG, Wachs IE Hydrogen generation from petroleum refinery off-gas. In: 2006 Amer
chemical soc 1155 16TH ST, NW, WASHINGTON, DC 20036 USA,
15. Kiuchi H, Nakamura T, Funaki K, Tanaka T (1982) Recovery of hydrogen from hydrogen
sulfide with metals or metal sulfides. Int J Hydrogen Energy 7(6):477–482
16. Leybros J, Carles P, Borgard J-M (2009) Countercurrent reactor design and flowsheet for iodinesulfur thermochemical water splitting process. Int J Hydrogen Energy 34(22):9060–9075
17. Kanade KG, Baeg J-O, Mulik UP, Amalnerkar DP, Kale BB (2006) Nano-CdS by polymerinorganic solid-state reaction: Visible light pristine photocatalyst for hydrogen generation.
Mater Res Bull 41(12):2219–2225. https://doi.org/10.1016/j.materresbull.2006.04.031
18. Yao W, Huang C, Muradov N, T-Raissi A, (2011) A novel Pd–Cr2O3/CdS photocatalyst
for solar hydrogen production using a regenerable sacrificial donor. Int J Hydrogen Energy
36(8):4710–4715. https://doi.org/10.1016/j.ijhydene.2010.12.124
19. Kale BB, Baeg JO, Lee SM, Chang H, Moon SJ, Lee CW (2006) CdIn2S4 nanotubes and
“Marigold” nanostructures: a visible-light photocatalyst. Adv Func Mater 16(10):1349–1354
20. Apte SK, Garaje SN, Naik SD, Waichal RP, Baeg J-O, Kale BB (2014) Quantum confinement
controlled solar hydrogen production from hydrogen sulfide using a highly stable CdS 0.5 Se
0.5/CdSe quantum dot–glass nanosystem. Nanoscale 6(2):908–915
21. Jang JS, Li W, Oh SH, Lee JS (2006) Fabrication of CdS/TiO2 nano-bulk composite photocatalysts for hydrogen production from aqueous H2S solution under visible light. Chem Phys
Lett 425(4):278–282. https://doi.org/10.1016/j.cplett.2006.05.031
22. Preethi V, Kanmani S (2013) Photocatalytic hydrogen production. Mater Sci Semicond Process
16(3):561–575. https://doi.org/10.1016/j.mssp.2013.02.001
23. Yu Y, Zhang T, Zheng L, Yu J (2013) Photocatalytic degradation of hydrogen sulfide using
TiO2 film under microwave electrodeless discharge lamp irradiation. Chem Eng J 225:9–15.
https://doi.org/10.1016/j.cej.2013.03.032
24. Chaudhari NS, Warule SS, Dhanmane SA, Kulkarni MV, Valant M, Kale BB (2013) Nanostructured N-doped TiO 2 marigold flowers for an efficient solar hydrogen production from H
2 S. Nanoscale 5(19):9383–9390
25. Chaudhari NS, Bhirud AP, Sonawane RS, Nikam LK, Warule SS, Rane VH, Kale BB (2011)
Ecofriendly hydrogen production from abundant hydrogen sulfide using solar light-driven
hierarchical nanostructured ZnIn2S4 photocatalyst. Green Chem 13(9):2500–2506
26. Ruban P, Sellappa K (2016) Concurrent hydrogen production and hydrogen sulfide decomposition by solar photocatalysis. Clean—Soil, Air, Water 44(8):1023–1035. https://doi.org/10.
1002/clen.201400563
4 Hydrogen Sulfide Decomposition and Nanotechnology
5. Zhao Y, Biggs TD, Xian M (2014) Hydrogen sulfide (H 2 S) releasing agents: chemistry and
biological applications. Chem Commun 50(80):11788–11805
6. Emami-Taba L, Irfan MF, Daud WMAW, Chakrabarti MH (2013) Fuel blending effects on the
co-gasification of coal and biomass–a review. Biomass Bioenergy 57:249–263
7. Mahmood Q, Zheng P, Cai J, Hayat Y, Hassan MJ, Wu D-l, Hu B-l (2007) Sources of sulfide in
waste streams and current biotechnologies for its removal. J Zhejiang Univ-Sci A 8(7):1126–
1140
8. Hawboldt KA, Monnery WD, Svrcek WY (2000) New experimental data and kinetic rate
expression for H2S pyrolysis and re-association. Chem Eng Sci 55(5):957–966
9. Zaman J, Chakma A (1995) Production of hydrogen and sulfur from hydrogen sulfide. Fuel
Process Technol 41(2):159–198
10. Cao D, Adesina AA (1999) Fluidised bed reactor studies of H2S decomposition over supported
bimetallic Ru catalysts. Catal Today 49(1–3):23–31
11. Guldal NO, Figen HE, Baykara SZ (2015) New catalysts for hydrogen production from H2S:
preliminary results. Int J Hydrogen Energy 40(24):7452–7458
12. Maloka IE, Aliwi SM, Naman SA (2006) Thermal decomposition of hydrogen sulphide by
cadmium chalcogens. Pet Sci Technol 24(1):103–112
13. Weaver D, Winnick J (1987) Electrochemical Removal of H 2 S from Hot Gas Streams:
Nickel/Nickel-Sulfide Cathode Performance. J Electrochem Soc 134(10):2451
14. Gibson AG, Wachs IE Hydrogen generation from petroleum refinery off-gas. In: 2006 Amer
chemical soc 1155 16TH ST, NW, WASHINGTON, DC 20036 USA,
15. Kiuchi H, Nakamura T, Funaki K, Tanaka T (1982) Recovery of hydrogen from hydrogen
sulfide with metals or metal sulfides. Int J Hydrogen Energy 7(6):477–482
16. Leybros J, Carles P, Borgard J-M (2009) Countercurrent reactor design and flowsheet for iodinesulfur thermochemical water splitting process. Int J Hydrogen Energy 34(22):9060–9075
17. Kanade KG, Baeg J-O, Mulik UP, Amalnerkar DP, Kale BB (2006) Nano-CdS by polymerinorganic solid-state reaction: Visible light pristine photocatalyst for hydrogen generation.
Mater Res Bull 41(12):2219–2225. https://doi.org/10.1016/j.materresbull.2006.04.031
18. Yao W, Huang C, Muradov N, T-Raissi A, (2011) A novel Pd–Cr2O3/CdS photocatalyst
for solar hydrogen production using a regenerable sacrificial donor. Int J Hydrogen Energy
36(8):4710–4715. https://doi.org/10.1016/j.ijhydene.2010.12.124
19. Kale BB, Baeg JO, Lee SM, Chang H, Moon SJ, Lee CW (2006) CdIn2S4 nanotubes and
“Marigold” nanostructures: a visible-light photocatalyst. Adv Func Mater 16(10):1349–1354
20. Apte SK, Garaje SN, Naik SD, Waichal RP, Baeg J-O, Kale BB (2014) Quantum confinement
controlled solar hydrogen production from hydrogen sulfide using a highly stable CdS 0.5 Se
0.5/CdSe quantum dot–glass nanosystem. Nanoscale 6(2):908–915
21. Jang JS, Li W, Oh SH, Lee JS (2006) Fabrication of CdS/TiO2 nano-bulk composite photocatalysts for hydrogen production from aqueous H2S solution under visible light. Chem Phys
Lett 425(4):278–282. https://doi.org/10.1016/j.cplett.2006.05.031
22. Preethi V, Kanmani S (2013) Photocatalytic hydrogen production. Mater Sci Semicond Process
16(3):561–575. https://doi.org/10.1016/j.mssp.2013.02.001
23. Yu Y, Zhang T, Zheng L, Yu J (2013) Photocatalytic degradation of hydrogen sulfide using
TiO2 film under microwave electrodeless discharge lamp irradiation. Chem Eng J 225:9–15.
https://doi.org/10.1016/j.cej.2013.03.032
24. Chaudhari NS, Warule SS, Dhanmane SA, Kulkarni MV, Valant M, Kale BB (2013) Nanostructured N-doped TiO 2 marigold flowers for an efficient solar hydrogen production from H
2 S. Nanoscale 5(19):9383–9390
25. Chaudhari NS, Bhirud AP, Sonawane RS, Nikam LK, Warule SS, Rane VH, Kale BB (2011)
Ecofriendly hydrogen production from abundant hydrogen sulfide using solar light-driven
hierarchical nanostructured ZnIn2S4 photocatalyst. Green Chem 13(9):2500–2506
26. Ruban P, Sellappa K (2016) Concurrent hydrogen production and hydrogen sulfide decomposition by solar photocatalysis. Clean—Soil, Air, Water 44(8):1023–1035. https://doi.org/10.
1002/clen.201400563
