Effect of the oil content on green hydrogen production from produced water using carbon quantum dots as a disruptive nanolectrolyte

被引:2
作者
Rios, Ever Herrera [1 ]
Guzman, Juan D. [1 ]
Ribadeneira, Rafael [2 ]
Bailon-Garcia, Esther [3 ]
Acevedo, Elizabeth Rodriguez [4 ]
Velez, Fredy [5 ]
Franco, Camilo A. [1 ]
Riazi, Masoud [6 ]
Cortes, Farid B. [1 ]
机构
[1] Univ Nacl Colombia Sede Medellin, Fac Minas, Grp Invest Fenomenos Superficie Michael Polanyi, Medellin 050034, Colombia
[2] Univ Nacl Colombia Sede Medellin, Fac Minas, Grp Invest Kimera, Medellin 050034, Colombia
[3] Univ Granada UEQ UGR, Dept Quim Inorgan, Mat Polifunc Basados Carbono UGR Carbon, Unidad Excelencia Quim Aplicada Biomed & Medioambi, ES-18071 Granada, Spain
[4] Inst Tecnol Metropolitano ITM, Grp Invest Mat Avanzados & Energia, Fac Ingn, Medellin 050034, Colombia
[5] Univ Valladolid, Escuela Ingn Ind, Res Inst Bioecon BioEcoUVa, TERMOCAL Res Grp, Paseo Cauce 59, Valladolid 47011, Spain
[6] Nazarbayev Univ, Sch Min & Geosci, Kabanbay Batyr 53, Astana 010000, Kazakhstan
关键词
Crude oil; CQDs; Electrolysis; Graphite; Hydrogen; Produced water; ELECTROLYSIS; ELECTRODES; EVOLUTION; TECHNOLOGIES; EFFICIENCY; STABILITY; DROPLETS; BEHAVIOR;
D O I
10.1016/j.ijhydene.2024.05.458
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Considering that high -purity fresh water is employed in the green production of hydrogen via commercial water electrolyzers and that over 80% of the global population faces significant water safety risks, it is essential to explore alternative water sources. One such alternative is the use of produced water from oil extraction processes. Hence, the main objective of this study is to evaluate the effect of the oil content of oilfield production water on the production of green hydrogen by electrolysis in the presence of carbon quantum dots (CQDs). For this purpose, various electrochemical techniques, such as linear sweep voltammetry (LSV), cyclic voltammetry (CV), and potentiometry, were used to identify the effect of crude oil during hydrogen production. Thermogravimetric analysis (TGA), mass spectrometry (MS), and Fourier -transform infrared spectroscopy (FTIR) were employed to discern the adsorption of crude oil onto the electrodes, quantify the gas fractions generated during the process and identify the functional groups present after the procedure, respectively. Also, optical microscopy was employed to follow the droplet size in the emulsion. The results show that using CQDs affects the Faradaic efficiency, which increases from 77% to 83% with the incorporation of CQDs. In the presence of CQDs, the effects generated by the presence of the oil are inhibited at low oil concentrations. On the contrary, hydrogen production increases by 10.0% (0.1 mL/min) with a faradaic efficiency of 83% and a half -cell efficiency of 41%, compared to the record obtained with the maximum concentration of emulsified crude oil (400 mg/L). The mean size of the initial emulsion droplets was 3.4 mu m. At the end of the test, there was evidence of complete breakage of the emulsion due to the effect of the applied electric field. No evidence of adsorption of crude oil on graphite electrodes during electrolysis is observed based on the tests. It has been shown that green hydrogen production from crude oil production water is feasible due to the proposed disruptive electrolytes in the produced water, which inhibit the effect of oil content in the O/W emulsion. This allows the implementation of a new green energy production initiative aligned with the global goal of achieving net zero emissions (NZE) by 2050. The current investigation presents a prospective alternative for harnessing the 18 kW electrical energy potential employed within emulsion -breaking processes within a Colombian field for treatment of around 1000 bpd. This alternative offers a theoretical potential for hydrogen production, approximating 7.36 kW, thus representing a promising opportunity for practical field deployment.
引用
收藏
页码:353 / 362
页数:10
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