Modified Stainless Steel as Anode Materials in Bioelectrochemical Systems

Author(s):  
Kai-Bo Pu ◽  
Ji-Rui Bai ◽  
Qing-Yun Chen ◽  
Yun-Hai Wang
Energies ◽  
2019 ◽  
Vol 12 (10) ◽  
pp. 1968 ◽  
Author(s):  
Shmuel Rozenfeld ◽  
Lea Ouaknin Hirsch ◽  
Bharath Gandu ◽  
Ravit Farber ◽  
Alex Schechter ◽  
...  

The anode activity in a microbial electrolysis cell (MEC) is known to be a limiting factor in hydrogen production. In this study, the MEC was constructed using different anode materials and a platinum-coated carbon-cloth cathode (CC). The anodes were comprised of CC, stainless steel (SS), and a combination of the two (COMB). The CC and SS anodes were also treated with plasma to improve their surface morphology and hydrophilic properties (CCP and SSP, respectively). A combined version of CCP attached to SS was also applied (COMBP). After construction of the MEC using the different anodes, we conducted electrochemical measurements and examination of biofilm viability. Under an applied voltage of 0.6 V (Ag/AgCl), the currents of a MEC based on CCP and COMBP were 11.66 ± 0.1331 and 16.36 ± 0.3172 A m−2, respectively, which are about three times higher compared to the untreated CC and COMB. A MEC utilizing an untreated SS anode exhibited current of only 0.3712 ± 0.0108 A m−2. The highest biofilm viability of 0.92 OD540 ± 0.07 and hydrogen production rate of 0.0736 ± 0.0022 m3 d−1 m−2 at 0.8 V were obtained in MECs based on the COMBP anode. To our knowledge, this is the first study that evaluated the effect of plasma-treated anodes and the use of a combined anode composed of SS and CC for hydrogen evolution in a MEC.


Biosensors ◽  
2021 ◽  
Vol 12 (1) ◽  
pp. 18
Author(s):  
Andreas Netsch ◽  
Harald Horn ◽  
Michael Wagner

Biofilms growing on electrodes are the heart piece of bioelectrochemical systems (BES). Moreover, the biofilm morphology is key for the efficient performance of BES and must be monitored and controlled for a stable operation. For the industrial use of BES (i.e., microbial fuel cells for energy production), monitoring of the biofilm accumulation directly on the electrodes during operation is desirable. In this study a commercially available on-line heat transfer biofilm sensor is applied to a graphite-polypropylene (C-PP) pipe and compared to its standard version where the sensor is applied to a stainless-steel pipe. The aim was to investigate the transferability of the sensor to a carbonaceous material (C-PP), that are preferably used as electrode materials for bioelectrochemical systems, thereby enabling biofilm monitoring directly on the electrode surface. The sensor signal was correlated to the gravimetrically determined biofilm thickness in order to identify the sensitivity of the sensor for the detection and quantification of biofilm on both materials. Results confirmed the transferability of the sensor to the C-PP material, despite the sensor sensitivity being decreased by a factor of approx. 5 compared to the default biofilm sensor applied to a stainless-steel pipe.


2020 ◽  
Vol 191 ◽  
pp. 110093
Author(s):  
De-Chun Xu ◽  
Si-Yuan Zhai ◽  
Hao-Yi Cheng ◽  
Awoke Guadie ◽  
Hong-Cheng Wang ◽  
...  

2014 ◽  
Vol 48 (12) ◽  
pp. 7151-7156 ◽  
Author(s):  
Kun Guo ◽  
Bogdan C. Donose ◽  
Alexander H. Soeriyadi ◽  
Antonin Prévoteau ◽  
Sunil A. Patil ◽  
...  

2018 ◽  
Vol 85 (13) ◽  
pp. 1181-1192 ◽  
Author(s):  
Jean-Marie Fontmorin ◽  
Junxian Hou ◽  
Shahid Rasul ◽  
Eileen Yu

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