Influence of laser photoactivated graphitic carbon nitride nanosheets and nickel nanoparticles on purple non-sulfur bacteria for biohydrogen production from biomass

被引:45
作者
Attia, Yasser A. [1 ]
Samer, Mohamed [2 ]
Moselhy, Mohamed A. [3 ]
Arisha, Ahmed H. [4 ,5 ]
Abdelqader, Ahmed A. [2 ]
Abdelsalam, Essam M. [1 ]
机构
[1] Cairo Univ, Natl Inst Laser Enhanced Sci, Dept Laser Applicat Metrol Photochem & Agr LAMPA, Cairo, Egypt
[2] Cairo Univ, Fac Agr, Dept Agr Engn, Cairo, Egypt
[3] Cairo Univ, Dept Microbiol, Fac Agr, Cairo, Egypt
[4] Badr Univ Cairo BUC, Fac Vet Med, Dept Anim Physiol & Biochem, Cairo, Egypt
[5] Zagazig Univ, Fac Vet Med, Dept Physiol, Zagazig 44519, Egypt
关键词
Biohydrogen Laser irradiation; Photo-biostimulation; Biomass; Anaerobic treatment; Waste management; DARK HYDROGEN FERMENTATION; ANAEROBIC-DIGESTION; METHANE PRODUCTION; BIOGAS PRODUCTION; HYALURONIC-ACID; ENHANCEMENT; IRON; WATER;
D O I
10.1016/j.jclepro.2021.126898
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The objective of this study is to increase biohydrogen production from biomass using laser photoactivated nanomaterials. Light saturation of photo-fermentation is a vital factor that influences fermentation effectiveness and hydrogen yield. In this study, it is hypothesized that the bio-stimulation of hydrogen-producing purple non-sulfur (PNS) bacteria using laser photoactivated nanomaterials can enhance the endurance ability of such bacteria to unsteady light irradiation, where this leads to overcome the challenge of light saturation. Furthermore, the addition of nanomaterials leads to bio-stimulate the bacterial cells and enhance their activity and growth rate and, therefore, increase biohydrogen production from biomass. A biohydrogen production system and a model of photobioreactor were manufactured and installed. Food wastes were collected from kitchen leftovers of different fast-food suppliers and were used in this study as feedstocks for biohydrogen production. The production process was conducted as following: exposing 16.5 mg/l of graphitic carbon nitride nanosheets on the one hand and 50 mg/l of nickel nanoparticles on the other hand to a helium-neon green laser radiation source with a wavelength of 543 nm for 1 h, then adding them to the bacterial inoculum and then mixing them with biomass and water by a ratio of 0.5:1:2 which were then kept in the photobioreactor exposed to white light emitting diodes (LEDs) with a luminous flux of 3600 lumen and at 30 degrees C for 26 days with mixing for 5 min every 30 min to produce biohydrogen. By this method, it is possible to improve the bioenvironmental conditions and the bio-responses of bacteria which results in increasing the biohydrogen yield by 287% over the conventional method. (C) 2021 Elsevier Ltd. All rights reserved.
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页数:11
相关论文
共 58 条
[11]   A critical review on limitations and enhancement strategies associated with biohydrogen production [J].
Banu, Rajesh J. ;
Usman, Mohamed T. M. ;
Kavitha, S. ;
Kannah, Yukesh R. ;
Yogalakshmi, K. N. ;
Sivashanmugam, P. ;
Bhatnagar, Amit ;
Kumar, Gopalakrishnan .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (31) :16565-16590
[12]   Integrated biorefinery routes of biohydrogen: Possible utilization of acidogenic fermentative effluent [J].
Banu, Rajesh J. ;
Ginni, G. ;
Kavitha, S. ;
Kannah, Yukesh R. ;
Kumar, Adish S. ;
Bhatia, Shashi Kant ;
Kumar, Gopalakrishnan .
BIORESOURCE TECHNOLOGY, 2021, 319
[13]   Polymeric Photocatalysts Based on Graphitic Carbon Nitride [J].
Cao, Shaowen ;
Low, Jingxiang ;
Yu, Jiaguo ;
Jaroniec, Mietek .
ADVANCED MATERIALS, 2015, 27 (13) :2150-2176
[14]   Preparation and characterization of MgO nanoparticles/ferroelectric liquid crystal composites for faster display devices with improved contrast [J].
Chandran, Achu ;
Prakash, Jai ;
Naik, Kush Kumar ;
Srivastava, Avanish Kumar ;
Dabrowski, Roman ;
Czerwinski, Michal ;
Biradar, A. M. .
JOURNAL OF MATERIALS CHEMISTRY C, 2014, 2 (10) :1844-1853
[15]   Biohydrogen production using sequential two-stage dark and photo fermentation processes [J].
Chen, Chun-Yen ;
Yang, Mu-Hoe ;
Yeh, Kuei-Ling ;
Liu, Chien-Hung ;
Chang, Joshu .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (18) :4755-4762
[16]   Electronic and structural properties of two-dimensional carbon nitride graphenes [J].
Deifallah, Malek ;
McMillan, Paul F. ;
Cora, Furio .
JOURNAL OF PHYSICAL CHEMISTRY C, 2008, 112 (14) :5447-5453
[17]   Influence and strategies for enhanced biohydrogen production from food waste [J].
Dinesh, G. Kumaravel ;
Chauhan, Rohit ;
Chakma, Sankar .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 92 :807-822
[18]   A fantastic graphitic carbon nitride (g-C3N4) material: Electronic structure, photocatalytic and photoelectronic properties [J].
Dong, Guoping ;
Zhang, Yuanhao ;
Pan, Qiwen ;
Qiu, Jianrong .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY C-PHOTOCHEMISTRY REVIEWS, 2014, 20 :33-50
[19]   Nickel-graphene nanocomposite as a novel supplement for enhancement of biohydrogen production from industrial wastewater containing mono-ethylene glycol [J].
Elreedy, Ahmed ;
Ibrahim, Eman ;
Hassan, Nazly ;
El-Dissouky, Ali ;
Fujii, Manabu ;
Yoshimura, Chihiro ;
Tawfik, Ahmed .
ENERGY CONVERSION AND MANAGEMENT, 2017, 140 :133-144
[20]  
EPA, 2001, 1684 US EPA ENG AN D, P20460