Caffeine-containing wastewater treatment and bioelectricity generation in up-flow constructed wetland-microbial fuel cell: Influence of caffeine concentration, operating conditions, toxicity assessment, and degradation pathway

被引:16
|
作者
Teoh, Tean-Peng [1 ,2 ]
Ong, Soon-An [1 ,2 ]
Ho, Li-Ngee [3 ]
Wong, Yee-Shian [1 ,2 ]
Lutpi, Nabilah Aminah [1 ,2 ]
Oon, Yoong-Ling [1 ]
Tan, Sing-Mei [1 ,2 ]
Ong, Yong-Por [3 ]
Yap, Kea-Lee [3 ]
机构
[1] Univ Malaysia Perlis, Ctr Excellence WAREG, Water Res & Environm Sustainabil Growth, Arau 02600, Perlis, Malaysia
[2] Univ Malaysia Perlis, Fac Civil Engn Technol, Arau 02600, Perlis, Malaysia
[3] Univ Malaysia Perlis, Fac Chem Engn Technol, Arau 02600, Perlis, Malaysia
关键词
Caffeine; Constructed wetland-microbial fuel cell; Degradation pathway; Electricity generation; Toxicity assessment; PERSONAL CARE PRODUCTS; AZO-DYE; REMOVAL; SYSTEM; ENERGY; PHARMACEUTICALS; DECOLORIZATION; PERFORMANCE; TECHNOLOGY; MACROPHYTE;
D O I
10.1016/j.jwpe.2022.102623
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study explored the potential of caffeine being utilized as the fuel for the microbes to produce electrons for electricity generation in up-flow constructed wetland-microbial fuel cell (UFCW-MFC). The effect of caffeine concentration was investigated to identify the availability of UFCW-MFC in the conversion of caffeine to electrons for electricity production; and the effect of operating conditions (circuit connection, supplementary aeration, and plant) was studied to determine their significance in the treatment of caffeine containing wastewater. The UFCW-MFC achieved about 98% of decaffeination efficiency regardless of caffeine concentration; while a decrease of efficiency was observed when UFCW-MFC operated without supplementary aeration and plant (similar to 93%). COD removal efficiency decreased correspondingly to the increase of caffeine concentration, which could be contributed by the higher concentration of caffeine and its intermediates. The degradation pathway of caffeine in UFCW-MFC was explored in this study. It was remarkable that ammonia was produced and converted to ammonium ions during caffeine catabolism. Supplementary aeration and macrophyte play a crucial role in removing excess caffeine, intermediates as well as accumulated ammonium ions. The toxicity assessment revealed that caffeine was degraded to less toxic products. The closed circuit connection not only contributed to electricity generation but also enhanced the caffeine and COD removal efficiency by 4.6 and 5.4% in the anaerobic region, respectively. The increase of voltage and maximum power density from phase I to phase IV indicated that caffeine could be converted to electrons by the anaerobes for electricity production.
引用
收藏
页数:12
相关论文
共 17 条
  • [1] Discerning the effect of operating conditions on the improvement of up-flow constructed wetland-microbial fuel cell performance in treating mixed azo dyes wastewater and bioelectricity generation
    Teoh, Tean-Peng
    Ong, Soon-An
    Ho, Li-Ngee
    Wong, Yee-Shian
    Lutpi, Nabilah Aminah
    Tan, Sing-Mei
    Ong, Yong-Por
    Yap, Kea-Lee
    ENERGY ECOLOGY AND ENVIRONMENT, 2024, 9 (03) : 301 - 313
  • [2] Enhancement of energy recovery from caffeine wastewater in constructed wetland-microbial fuel cell through operating conditions
    Teoh, Tean-Peng
    Ong, Soon-An
    Ho, Li-Ngee
    Wong, Yee-Shian
    Lutpi, Nabilah Aminah
    Tan, Sing-Mei
    Ong, Yong-Por
    Yap, Kea-Lee
    ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2023, 30 (35) : 84397 - 84411
  • [3] Enhancement of energy recovery from caffeine wastewater in constructed wetland-microbial fuel cell through operating conditions
    Tean-Peng Teoh
    Soon-An Ong
    Li-Ngee Ho
    Yee-Shian Wong
    Nabilah Aminah Lutpi
    Sing-Mei Tan
    Yong-Por Ong
    Kea-Lee Yap
    Environmental Science and Pollution Research, 2023, 30 : 84397 - 84411
  • [4] Use of a graphite-cement composite as electrode material in up-flow constructed wetland-microbial fuel cell for greywater treatment and bioelectricity generation
    Arvaniti, I
    Fountoulakis, M. S.
    JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2021, 9 (03):
  • [5] Up-flow constructed wetland-microbial fuel cell for azo dye, saline, nitrate remediation and bioelectricity generation: From waste to energy approach
    Oon, Yoong-Ling
    Ong, Soon-An
    Ho, Li-Ngee
    Wong, Yee-Shian
    Dahalan, Farrah Aini
    Oon, Yoong-Sin
    Lehl, Harvinder Kaur
    Thung, Wei-Eng
    Nordin, Noradiba
    BIORESOURCE TECHNOLOGY, 2018, 266 : 97 - 108
  • [6] Baffled flow constructed wetland-microbial fuel cell coupling systems for combined secondary and tertiary wastewater treatment with simultaneous bioelectricity generation
    Guo, Fei
    Wang, Hang
    Wei, Xin
    Luo, Benfu
    Song, Xiaoming
    BIORESOURCE TECHNOLOGY, 2024, 412
  • [7] Role of macrophyte and effect of supplementary aeration in up-flow constructed wetland-microbial fuel cell for simultaneous wastewater treatment and energy recovery
    Oon, Yoong-Ling
    Ong, Soon-An
    Ho, Li-Ngee
    Wong, Yee-Shian
    Dahalan, Farrah Aini
    Oon, Yoong-Sin
    Lehl, Harvinder Kaur
    Thung, Wei-Eng
    Nordin, Noradiba
    BIORESOURCE TECHNOLOGY, 2017, 224 : 265 - 275
  • [8] Performance assessment of constructed wetland-microbial fuel cell for treatment of mariculture wastewater containing heavy metals
    Liu, Fei-fei
    Lu, Tong
    Zhang, Yu-xue
    PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2022, 168 : 633 - 641
  • [9] Hybrid system up-flow constructed wetland integrated with microbial fuel cell for simultaneous wastewater treatment and electricity generation
    Oon, Yoong-Ling
    Ong, Soon-An
    Ho, Li-Ngee
    Wong, Yee-Shian
    Oon, Yoong-Sin
    Lehl, Harvinder Kaur
    Thung, Wei-Eng
    BIORESOURCE TECHNOLOGY, 2015, 186 : 270 - 275
  • [10] Acorus calamus L. constructed wetland-microbial fuel cell for Cr (VI)-containing wastewater treatment and bioelectricity production
    Liu, Shentan
    Qiu, Dengfei
    Lu, Feifan
    Wang, Yue
    Wang, Zuo
    Feng, Xiaojuan
    Pyo, Sang-Hyun
    JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2022, 10 (03):