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Electrochemistry

Electrochemical Determination of Chemical Oxygen Demand (COD) in Surface Water Using a Microfabricated Boron-Doped Diamond (BDD) Electrode by Chronoamperometry

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Pages 2346-2358 | Received 10 Oct 2022, Accepted 11 Jan 2023, Published online: 19 Jan 2023

References

  • Alpar, N., Y. Yardım, and Z. Şentürk. 2018. Selective and simultaneous determination of total chlorogenic acids, vanillin and caffeine in foods and beverages by adsorptive stripping voltammetry using a cathodically pretreated boron-doped diamond electrode. Sensors and Actuators B: Chemical 257:398–408. doi:10.1016/j.snb.2017.10.100.
  • Bogdanowicz, R., J. Czupryniak, M. Gnyba, J. Ryl, T. Ossowski, M. Sobaszek, and K. Darowicki. 2012. Determination of chemical oxygen demand (COD) at boron-doped diamond (BDD) sensor by means of amperometric technique. Procedia Engineering 47:1117–20. doi:10.1016/j.proeng.2012.09.347.
  • Bogdanowicz, R., J. Czupryniak, M. Gnyba, J. Ryl, T. Ossowski, M. Sobaszek, E. M. Siedlecka, and K. Darowicki. 2013. Amperometric sensing of chemical oxygen demand at glassy carbon and silicon electrodes modified with boron-doped diamond. Sensors and Actuators B: Chemical 189:30–6. doi:10.1016/j.snb.2012.12.007.
  • Cai, J., T. Niu, P. Shi, and G. Zhao. 2019. Boron‐doped diamond for hydroxyl radical and sulfate radical anion electrogeneration, transformation, and voltage‐free sustainable oxidation. Small 15:1900153. doi:10.1002/smll.201900153.
  • Espinoza, L., A. Henríquez, D. Contreras, and R. Salazar. 2018. Evidence for the production of hydroxyl radicals at boron-doped diamond electrodes with different sp3/sp2 ratios and its relationship with the anodic oxidation of aniline. Electrochemistry Communications 90:30–3. doi:10.1016/j.elecom.2018.03.007.
  • Fang, Z., D. Chen, F. Yan, J. Lv, Y. Wang, and X. Guan. 2021. A novel Ni/ZnO/Cu composite electrode with high sensitivity for detection of chemical oxygen demand. Surfaces and Interfaces 24:101091. doi:10.1016/j.surfin.2021.101091.
  • Granger, M. C., M. Witek, J. Xu, J. Wang, M. Hupert, A. Hanks, M. D. Koppang, J. E. Butler, G. Lucazeau, M. Mermoux, et al. 2000. Standard electrochemical behaviour of high-quality, boron-doped polycrystalline diamond thin-film electrodes. Analytical Chemistry 72 (16):3793–804. doi:10.1021/ac0000675.
  • Gutiérrez-Capitán, M., A. Baldi, R. Gómez, V. García, C. Jiménez-Jorquera, and C. Fernández-Sánchez. 2015. Electrochemical nanocomposite-derived sensor for the analysis of chemical oxygen demand in urban wastewaters. Analytical Chemistry 87 (4):2152–60. doi:10.1021/ac503329a.
  • Hassan, H., I. Badr, H. Abdel-Fatah, E. Elfeky, and A. Abdel-Aziz. 2018. Low cost chemical oxygen demand sensor based on electrodeposited nano-copper film. Arabian Journal of Chemistry 11 (2):171–80. doi:10.1016/j.arabjc.2015.07.001.
  • Henke, A., T. Saunders, J. Pedersen, and R. Hamers. 2019. Enhancing electrochemical efficiency of hydroxyl radical formation on diamond electrodes by functionalization with hydrophobic monolayers. Langmuir: The ACS Journal of Surfaces and Colloids 35 (6):2153–63. doi:10.1021/acs.langmuir.8b04030.
  • Justino, C., A. Freitas, A. Duarte, and T. Santos. 2015. Sensors and biosensors for monitoring marine contaminants. Trends in Environmental Analytical Chemistry 6:21–30. doi:10.1016/j.teac.2015.02.001.
  • Kolb, M., M. Bahadir, and B. Teichgräber. 2017. Determination of chemical oxygen demand (COD) using an alternative wet chemical method free of mercury and dichromate. Water Research 122:645–54. doi:10.1016/j.watres.2017.06.034.
  • Lai, K., J. Wen, T. Wan, and S. Huang. 2017. Chemical oxygen demand degradation of the wastewater from photovoltaic cell plants: A case study on an actual plant in Taiwan. Desalination and Water Treatment 85:113–9. doi:10.5004/dwt.2017.21258.
  • Li, X., D. Lin, K. Lu, X. Chen, S. Yin, Y. Li, Z. Zhang, M. Tang, and G. Chen. 2020. Graphene oxide orientated by a magnetic field and application in sensitive detection of chemical oxygen demand. Analytica Chimica Acta 1122:31–8. doi:10.1016/j.aca.2020.05.009.
  • Li, J., G. Luo, L. He, J. Xu, and J. Lyu. 2018. Analytical approaches for determining chemical oxygen demand in water bodies: A review. Critical Reviews in Analytical Chemistry 48 (1):47–65. doi:10.1080/10408347.2017.1370670.
  • Li, J., T. Tao, X-b Li, J-l Zuo, T. Li, J. Lu, S-h Li, L-z Chen, C-y Xia, Y. Liu, et al. 2009. A spectrophotometric method for determination of chemical oxygen demand using home-made reagents. Desalination 239 (1–3):139–45. doi:10.1016/j.desal.2008.03.014.
  • Mo, H., Y. Tang, X. Wang, J. Liu, D. Kong, Y. Chen, P. Wan, H. Cheng, T. Sun, L. Zhang, et al. 2015. Development of a three-dimensional structured carbon fiber felt/β-PbO2 electrode and its application in chemical oxygen demand determination. Electrochimica Acta 176:1100–7. doi:10.1016/j.electacta.2015.07.126.
  • Moore, W., R. Kroner, and C. Ruchhoft. 1949. Dichromate reflux method for determination of oxygen consumed. Analytical Chemistry 21 (8):953–7. doi:10.1021/ac60032a020.
  • Mostafa, E., P. Reinsberg, S. Garcia-Segura, and H. Baltruschat. 2018. Chlorine species evolution during electrochlorination on boron-doped diamond anodes: in-situ electrogeneration of Cl2, Cl2O and ClO2. Electrochimica Acta 281:831–40. doi:10.1016/j.electacta.2018.05.099.
  • Oriol, R., D. Clematis, E. Brillas, J. L. Cortina, M. Panizza, and I. Sirés. 2019. Groundwater treatment using a solid polymer electrolyte cell with mesh electrodes. ChemElectroChem 6 (4):1235–43. doi:10.1002/celc.201801906.
  • Popović, D., and D. Johnson. 1998. A ring − disk study of the competition between anodic oxygen-transfer and dioxygen-evolution reactions. Analytical Chemistry 70 (3):468–72. doi:10.1021/ac9707803.
  • Sarakhman, O., and Ľ. Švorc. 2022. A review on recent advances in the applications of boron-doped diamond electrochemical sensors in food analysis. Critical Reviews in Analytical Chemistry 52 (4):791–813. doi:10.1080/10408347.2020.1828028.
  • Svítková, J., T. Ignat, Ľ. Švorc, J. Labuda, and J. Barek. 2016. Chemical modification of boron-doped diamond electrodes for applications to biosensors and biosensing. Critical Reviews in Analytical Chemistry 46 (3):248–56. doi:10.1080/10408347.20-15.1082125.
  • Westbroek, P., and E. Temmerman. 2001. In line measurement of chemical oxygen demand by means of multipulse amperometry at a rotating Pt ring: Pt/PbO2 disc electrode. Analytica Chimica Acta 437 (1):95–105. doi:10.1016/S0003-2670(01)00927-8.
  • Yin, J., W. Gao, Z. Zhang, Y. Mai, A. Luan, H. Jin, J. Jian, and Q. Jin. 2020. Batch microfabrication of highly integrated silicon-based electrochemical sensor and performance evaluation via nitrite water contaminant determination. Electrochimica Acta 335:135660. doi:10.1016/j.electacta.2020.135660.
  • Yu, H., C. Ma, X. Quan, S. Chen, and H. Zhao. 2009. Flow injection analysis of chemical oxygen demand (COD) by using a boron-doped diamond (BDD) electrode. Environmental Science & Technology 43 (6):1935–9. doi:10.1021/es8033878.
  • Yu, H., H. Wang, X. Quan, S. Chen, and Y. Zhang. 2007. Amperometric determination of chemical oxygen demand using boron-doped diamond (BDD) sensor. Electrochemistry Communications 9 (9):2280–5. doi:10.1016/j.elecom.2007.06.037.

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