MOF) composite with improved electrocatalytic efficiency for hydrogen production. Int J
Hydrogen Energy 44:18891–18902
Mondal C, Singh A, Sahoo R, Sasmal AK, Negishi Y, Pal T (2015) Preformed ZnS nanoflower
prompted evolution of CuS/ZnS p–n heterojunctions for exceptional visible-light driven
photocatalytic activity. New J Chem 39:5628–5635
Nas A, Dilber G, Durmuş M, Kantekin H (2015) The influence of the various central metals on
photophysical and photochemical properties of benzothiazole-substituted phthalocyanines.
Spectrochim Acta A Mol Biomol Spectrosc 135:55–62
Niknam E, Panahi F, Daneshgar F, Bahrami F, Khalafi-Nezhad A (2018) Metal organic framework
MIL-101 (Cr) as an efficient heterogeneous catalyst for clean synthesis of benzoazoles. ACS
Omega 3:17135–17144
Qamar M, Adam A, Merzougui B, Helal A, Abdulhamid O, Siddiqui MN (2016) Metal – organic
framework-guided growth of Mo 2 C embedded in mesoporous carbon as a high- performance
and stable electrocatalyst for the hydrogen evolution reaction. J Mater Chem A Mater Energy
Sustain 4:16225–16232
Qiu J, Zhang X, Feng Y, Zhang X, Wang H, Yao J (2018) Modified metal-organic frameworks as
photocatalysts. Appl Catal B Environ 231:317–342
Qu X, Alvarez PJ, Li Q (2013) Applications of nanotechnology in water and wastewater treatment.
Water Res 47:3931–3946
Ramohlola KE, Masikini M, Mdluli SB, Monama GR, Hato MJ, Molapo KM, Iwuoha EI,
Modibane KD (2017a) Electrocatalytic hydrogen production properties of polyaniline doped
with metal organic frameworks. In: Kaneko S, Mele P, Endo T, Tsuchiya T, Tanaka K,
Yoshimura M, Hui D (eds) Carbon-related materials in recognition of Nobel lectures by Prof.
Akira Suzuki in ICCE. Springer Nature Publishers, pp 373–389., ISBN 978-3-319-61650-6
Ramohlola KE, Masikini M, Mdluli SB, Monama GR, Hato MJ, Molapo KM, Iwuoha EI,
Modibane KD (2017b) Electrocatalytic hydrogen evolution reaction of metal organic frameworks decorated with poly (3-aminobenzoic acid). Electrochim Acta 246:1174–1182
Ramohlola KE, Masikini M, Mdluli SB, Monama GR, Hato MJ, Molapo KM, Iwuoha EI,
Modibane KD (2017c) Electrocatalytic hydrogen production properties of poly(3-aminobenzoic
acid) doped with metal organic frameworks. Int J Electrochem Sci 12:4392–4405
Ramohlola KE, Masikini M, Mdluli SB, Monana GR, Hato MJ, Molapo KM, Iwuoha EI, Modibane
KD (2018) Polyaniline-metal organic framework nanocomposite as an efficient electrocatalyst
for hydrogen evolution reaction. Compos Part B Eng 137:129–139
Raoof JB, Hosseini SR, Ojani R, Mandegarzad S (2015) MOF-derived Cu/nanoporous carbon
composite and its application for electro-catalysis of hydrogen evolution reaction. Energy
90:1075–1081
Ribeiro AR, Nunes OC, Pereira MFR, Silva AMT (2015) An overview on the advanced oxidation
processes applied for the treatment of water pollutants defined in the recently launched directive
2013/39/EU. Environ Int 75:33–51
Salunke-gawali S, Kathawate L, Puranik VG (2012) MOF with hydroxynaphthoquinone as organic
linker : molecular structure of [Zn(Chlorolawsone) 2 (H 2 O) 2 ] and thermogravimetric studies. J
Mol Struct 1022:189–196
Schwarzenbach RP, Escher BI, Fenner K, Hofstetter TB, Johnson CA, Von Gunten U, Wehrli B
(2006) The challenge of micropollutants in aquatic systems. Science 313:1072–1077
Sha Z, Chan HSO, Wu J (2015) Ag2CO3/UiO-66 (Zr) composite with enhanced visible-light
promoted photocatalytic activity for dye degradation. J Hazard Mater 299:132–140
Shannon MA, Bohn PW, Elimelech M, Georgiadis JG, Mariñas BJ, Mayes AM (2008) Science and
technology for water purification in the coming decades. Nature 452:301–310
Sharma VK, Feng M (2017) Water depollution using metal-organic frameworks-catalyzed
advanced oxidation processes: a review. J Hazard Mater. https://doi.org/10.1016/j.jhazmat.
2017.09.043
282
T. C. Maponya et al.
Hydrogen Energy 44:18891–18902
Mondal C, Singh A, Sahoo R, Sasmal AK, Negishi Y, Pal T (2015) Preformed ZnS nanoflower
prompted evolution of CuS/ZnS p–n heterojunctions for exceptional visible-light driven
photocatalytic activity. New J Chem 39:5628–5635
Nas A, Dilber G, Durmuş M, Kantekin H (2015) The influence of the various central metals on
photophysical and photochemical properties of benzothiazole-substituted phthalocyanines.
Spectrochim Acta A Mol Biomol Spectrosc 135:55–62
Niknam E, Panahi F, Daneshgar F, Bahrami F, Khalafi-Nezhad A (2018) Metal organic framework
MIL-101 (Cr) as an efficient heterogeneous catalyst for clean synthesis of benzoazoles. ACS
Omega 3:17135–17144
Qamar M, Adam A, Merzougui B, Helal A, Abdulhamid O, Siddiqui MN (2016) Metal – organic
framework-guided growth of Mo 2 C embedded in mesoporous carbon as a high- performance
and stable electrocatalyst for the hydrogen evolution reaction. J Mater Chem A Mater Energy
Sustain 4:16225–16232
Qiu J, Zhang X, Feng Y, Zhang X, Wang H, Yao J (2018) Modified metal-organic frameworks as
photocatalysts. Appl Catal B Environ 231:317–342
Qu X, Alvarez PJ, Li Q (2013) Applications of nanotechnology in water and wastewater treatment.
Water Res 47:3931–3946
Ramohlola KE, Masikini M, Mdluli SB, Monama GR, Hato MJ, Molapo KM, Iwuoha EI,
Modibane KD (2017a) Electrocatalytic hydrogen production properties of polyaniline doped
with metal organic frameworks. In: Kaneko S, Mele P, Endo T, Tsuchiya T, Tanaka K,
Yoshimura M, Hui D (eds) Carbon-related materials in recognition of Nobel lectures by Prof.
Akira Suzuki in ICCE. Springer Nature Publishers, pp 373–389., ISBN 978-3-319-61650-6
Ramohlola KE, Masikini M, Mdluli SB, Monama GR, Hato MJ, Molapo KM, Iwuoha EI,
Modibane KD (2017b) Electrocatalytic hydrogen evolution reaction of metal organic frameworks decorated with poly (3-aminobenzoic acid). Electrochim Acta 246:1174–1182
Ramohlola KE, Masikini M, Mdluli SB, Monama GR, Hato MJ, Molapo KM, Iwuoha EI,
Modibane KD (2017c) Electrocatalytic hydrogen production properties of poly(3-aminobenzoic
acid) doped with metal organic frameworks. Int J Electrochem Sci 12:4392–4405
Ramohlola KE, Masikini M, Mdluli SB, Monana GR, Hato MJ, Molapo KM, Iwuoha EI, Modibane
KD (2018) Polyaniline-metal organic framework nanocomposite as an efficient electrocatalyst
for hydrogen evolution reaction. Compos Part B Eng 137:129–139
Raoof JB, Hosseini SR, Ojani R, Mandegarzad S (2015) MOF-derived Cu/nanoporous carbon
composite and its application for electro-catalysis of hydrogen evolution reaction. Energy
90:1075–1081
Ribeiro AR, Nunes OC, Pereira MFR, Silva AMT (2015) An overview on the advanced oxidation
processes applied for the treatment of water pollutants defined in the recently launched directive
2013/39/EU. Environ Int 75:33–51
Salunke-gawali S, Kathawate L, Puranik VG (2012) MOF with hydroxynaphthoquinone as organic
linker : molecular structure of [Zn(Chlorolawsone) 2 (H 2 O) 2 ] and thermogravimetric studies. J
Mol Struct 1022:189–196
Schwarzenbach RP, Escher BI, Fenner K, Hofstetter TB, Johnson CA, Von Gunten U, Wehrli B
(2006) The challenge of micropollutants in aquatic systems. Science 313:1072–1077
Sha Z, Chan HSO, Wu J (2015) Ag2CO3/UiO-66 (Zr) composite with enhanced visible-light
promoted photocatalytic activity for dye degradation. J Hazard Mater 299:132–140
Shannon MA, Bohn PW, Elimelech M, Georgiadis JG, Mariñas BJ, Mayes AM (2008) Science and
technology for water purification in the coming decades. Nature 452:301–310
Sharma VK, Feng M (2017) Water depollution using metal-organic frameworks-catalyzed
advanced oxidation processes: a review. J Hazard Mater. https://doi.org/10.1016/j.jhazmat.
2017.09.043
282
T. C. Maponya et al.
