| Literature DB >> 28773929 |
Fei Yu1,2, Chengxian Wang3, Jie Ma4,5.
Abstract
Graphene-modified materials have caEntities:
Keywords: anode; cathode; electrode; graphene; microbial fuel cell
Year: 2016 PMID: 28773929 PMCID: PMC5456629 DOI: 10.3390/ma9100807
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1(a) Schematic illustration of the chemical reduction and hydrothermal methods. Scanning electron microscopy (SEM) images of graphene aerogel (GA) without l-cysteine (b,c). SEM images of GA with l-cysteine (d,e). Adapted from [4], with permission from © 2015 The Royal Society of Chemistry.
Figure 2Schematic illustration of the layered and branched structure formation process of chitosan/reduced graphene oxide (CHI/rGO) (a) and chitosan/vacuum-stripped graphene (CHI/VSG) (b) scaffolds; SEM images of CHI/VSG (c,e) and CHI/rGO (d,f) scaffolds after incubation with bacteria at a low (c,d) and high (e,f) magnification. Adapted from [68], with permission from © 2012 American Chemical Society.
Figure 3(a) SEM image of the graphene sponge (GS) showing the macroscale porous structure and the graphene surface (inset); (b,c) SEM images of a colonized graphene-sponge-stainless steel mesh electrode (GMS) after 50 days of operation, at different scales. Adapted from [66], with permission from © 2012 The Royal Society of Chemistry.
Figure 4Schematic illustration of the fabrication process for the hierarchical porous graphene/nickel composite electrode. Adapted from [78], with permission from © 2014 The Royal Society of Chemistry.
Figure 5Potential benefits of MFCs for energy, environmental, operational and economic sustainability. Adapted from [81], with permission from © 2014 The Royal Society of Chemistry.
Figure 6(a) The plot of the specific surface area increasing with the vacuum-stripped graphene concentration of the chitosan/vacuum-stripped graphene (CHI/VSG) scaffolds; (b) CHI/VSG-50 scaffold; Constant-load discharge curve (c); and power density and polarization curves (d) of the microbial fuel cells based on the CHI/VSG-50 anode. Arrows of (c) indicate the time of glucose feeding. Adapted from [68], with permission from © 2012 American Chemical Society.
Figure 7SEM images of carbon paper (CP) (A,D); graphene nanosheets modified carbon paper (GNS/CP) (B,E); and graphene nanosheets modified carbon paper with a positively charged ionic liquid (IL-GNS/CP) (C,F) electrodes before and after S. oneidensis cells attached on the surface of the anodes. Adapted from [21], with permission from © 2013 The Royal Society of Chemistry.
Figure 8(a) Cyclic voltammograms of n-layer graphene composites (n = 0, 1, 2, 4, 6) in aqueous 0.1 mol L−1 KCl containing 10 mmol L−1 K3[Fe(CN)6] at a scan rate of 20 mV s−1. Adapted from [98], with permission from © 2015 The Royal Society of Chemistry; (b) Tafel plots of the different cultured anodes. Adapted from [102], with permission from © 2016 The Royal Society of Chemistry; (c) Microorganisms interconnected via microbial nanowires. Adapted from. Adapted from [66], with permission from © 2012 The Royal Society of Chemistry; (d) Schematic of the extracellular electron transfer (EET) pathways in the graphene sponge (GS) electrode with (right) and without (left) stainless steel. Adapted from [66], with permission from © 2012 The Royal Society of Chemistry.
Figure 9Mechanical properties of graphene sponges (GS) and graphene foams (GF). Compression-recovery process of GS (a–c) and GF (e–g) after 50% deformation, and the compressive stress-strain curves of 6 cycles of loading and unloading for GS (d) and GF (h) under constant pressure. Adapted from [3], with permission from © 2014 The Royal Society of Chemistry.
Summary of microbial fuel cells (MFC) anode electrode studies.
| No. | S/D | Anode | Membranes | Inoculation | Cathode Electrode | OCV/mV | Power Density/mW·m−2 | Ref. | |||
|---|---|---|---|---|---|---|---|---|---|---|---|
| Electrode | Modification | Volume/mL | |||||||||
| 1 | D | 3D GF | PANI | 150 | Nafion 117 | Carbon cloth | 2000 | >250 | 768 | [ | |
| 2 | D | Graphite felt | PPy/GO | 25 | CEM | Carbon felt | 500 | ~350 | 1326 | [ | |
| 3 | D | Carbon paper | GNRs/PANI | 100 | Nafion 211 | Carbon paper | 1000 | - | 856 | [ | |
| 4 | D | Carbon paper | Graphene/Au | 100 | Nafion 211 | Carbon paper | 1000 | - | 508 | [ | |
| 5 | D | Nickel foams | Graphene/TiO2 | 100 | Nafion 112 | Carbon paper | - | - | 1060 | [ | |
| 6 | D | Carbon cloth | Graphene | 180 | Nafion 117 | Carbon cloth | 1960 | ~700 | 52.5 | [ | |
| 7 | D | Carbon cloth | rGO-SnO2 | 75 | Nafion 117 | Pt rod | 550 | 830 | 1624 | [ | |
| 8 | D | Ni foam | rGO | 25 | - | - | 100 | 620 | 661 W·m−3 | [ | |
| 9 | D | Carbon cloth | NGNS | 10 | Nafion 115 | Carbon cloth | 510 | ~350 | 1008 | [ | |
| 11 | S | Glassy carbon | Microbially reduced graphene | 10 | CEM | Anaerobic activated sludge | Carbon cloth/Pt | 1000 | >450 | 1905 | [ |
| 13 | S | Graphite block | Graphene | 100 | - | Carbon paper | 500 | 150 | 102 | [ | |
| 14 | D | Carbon cloth | PANI-rGO | 40 | Nafion 117 | anaerobic sludge | Carbon felts | 500 | 770 | 1390 | [ |
| 15 | D | Carbon cloth | TiO2/rGO | 100 | Nafion 117 | Carbon fiber brush | 1500 | - | 3169 | [ | |
| 16 | D | CHI/VSG scaffolds | Nafion 117 | Carbon cloth | 1960 | 910 | 1530 | [ | |||
| 17 | D | Carbon cloth | Graphene | 20 | NO | Carbon cloth | - | 900 | 2850 | [ | |
| 18 | S | 3D-Graphene | 28 | - | Previous reactor | Carbon cloth/Pt | 1000 | - | 1516 ± 87 | [ | |
| 19 | D | 3D GS aerogels | 120 | CMI7000 | Anaerobic sludge | Carbon paper | 1000 | ~550 | 710 | [ | |
| 20 | D | Carbon cloth | GA | 100 | Nafion 117 | Carbon cloth | 1500 | ~700 | 679.7 | [ | |
| 21 | S | Carbon paper | Graphene with IL-NH2 | - | - | - | - | 610 | [ | ||
| 22 | D | Stainless-steel mesh | Graphene-containing foam | - | Nafion 117 | Carbon paper | - | ~600 | 768 | [ | |
| 23 | D | Carbon cloth | rGO/PPy | - | - | - | 1000 | 400 | 1068 | [ | |
| 24 | D | Carbon paper | Graphene | 140 | CMI-7000 | Anaerobic sludge | Carbon paper | 1000 | 580 | 368 | [ |
| 25 | D | Polyurethane | GS | - | - | Previous reactor | Carbon cloth/Pt | 475 | - | 1570 | [ |
| 26 | D | Stainless-steel mesh | Graphene | 115 | Nafion 112 | Carbon paper | - | 790 | 2668 | [ | |
| 27 | S | Ni foam | 3D rGO | 20 | - | Carbon caper/Pt | 1000 | 623 | 897.1 | [ | |
In the second column, “S” is for the single-air cathode MFC and “D” is for the dual-chamber MFC including the “H style” MFC. “-” means that it is not mentioned in the research. In the fourth column, “NO” represents membrane-free, and CEM represents cation exchange membrane. R means the external resistance.
Figure 10Variation of disk and ring currents on nitrogen-doped graphene (NG) cathode and Pt/C cathode as a function of the potential at a rotation rate of 1600 rpm (a); and the corresponding H2O2 yield and electron transfer number (n) as a function of the potential (b). Polarization curves (j-V relationship, where j is represent for the current density) of oxygen reduction reaction (ORR) at NG cathode (c) after varying the potential cycles at a rotation rate of 1600 rpm, and (b) at varied rotation rates after 5000 cycles, inset (d) shows the Koutecky-Levich (k-l) plots. Adapted from [50], with permission from © 2013 American Chemical Society.
Figure 11C-N groups on the surface of nitrogen-doped graphene (NG) were protected from the assault of protons by O-H groups. Adapted from [50], with permission from © 2013 American Chemical Society.
Figure 12Fundamental configuration of microbial fuel cells with the redox potential of various electron acceptors and donors at pH = 7.0.
Summary of MFC cathode electrode studies.
| No. | S/D | Cathode | Membranes | Inoculation | Anode | External Resistor/Ω | OCV/mV | Power Density/mW·m−2 | Ref. | ||
|---|---|---|---|---|---|---|---|---|---|---|---|
| Electrode | Modification | Electrode | Volume/mL | ||||||||
| 1 | D | Carbon paper | NG | Nafion 117 | Activated sludge | Carbon cloth | 100 | 1000 | 650 | 776 ± 12 | [ |
| 2 | D | Glassy carbon | Fe- and N-functionalized graphene | Nafion 117 | Previous reactor | Carbon felt | ~30 | 1000 | 570 | 885 | [ |
| 3 | S | Carbon paper | MnO2-NTs/graphene | Nafion 117 | Previous reactor | Carbon cloth | 60 | 1000 | 613 | 4.68 W·m−3 | [ |
| 4 | S | Carbon cloth | Pt-Co/G | NO | Previous reactor | Carbon cloth | 27 | 1000 | 710 | 1378 | [ |
| 5 | D | Carbon cloth | Graphene/biofilm | Nafion 117 | Anaerobic activated sludge | Carbon cloth | 10 | 1000 | 390 | 323.2 ± 21 | [ |
| 6 | D | Carbon cloth | NG | NO | Previous reactor | Carbon fiber brush | 20 | 1000 | 555 | 1350 ± 15 | [ |
| 7 | S | Stainless steel net | NG | - | Anaerobic sludge | Carbon brush | 200 | 1500 | 243 | 1159.34 | [ |
| 8 | S | Carbon Paper | Fe-NG | CEM | Anaerobic activated sludge | Carbon felt | 40 | 500 | 242 | 1149.8 | [ |
| 9 | S | Stainless steel net | MnO2/GNS | - | Anaerobic sludge | Carbon felt | 200 | 1500 | 771 | 2083 | [ |
| 10 | S | Carbon cloth | α-MnO2/GO | Nafion 117 | Sewage sludge | Carbon cloth | 25 | - | 710 | 3359 | [ |
| 11 | S | Stainless steel mesh | Cobalt sulfides/GO | NO | Previous reactor | Graphite fiber | 28 | 1000 | 620 | 1156 ± 18 | [ |
| 12 | D | Carbon cloth | NG/CoNi-alloy | CEM | - | Carbon brush | 140 | 1000 | ~700 | 2000 | [ |
| 13 | S | PANI | Graphene | NO | Residual sludge | Graphite | 1800 | 500 | 640 | 99 | [ |
| 14 | D | Carbon cloth | rGO particles | Ultex CMI 7000 | Anaerobic sludge | Carbon brush | 120 | 1000 | 650 | 3.3 W·m−3 | [ |
| 15 | D | Carbon paper | Graphene with Iron tetrasulfophthalocyanine. | Nafion 112 | Carbon paper | 115 | - | - | 817 | [ | |
| 16 | S | Carbon cloth | Graphene/Pt | NO | Carbon cloth | 75 | 1000 | ~260 | 0.159 | [ | |
| 17 | D | Carbon cloth | NG | - | - | Carbon fiber brush | 120 | - | 840 | 4.06 W·m−3 | [ |
| 18 | D | Graphene-Au-laccase hybrid | PFSA NRE-211 | Graphene-Au | - | - | 1160 | 1.96 mW·cm−2 | [ | ||
| 19 | S | Carbon paper | Graphene/PANI | - | - | - | - | - | 593 | 17.95 | [ |
| 20 | D | Graphite rods | Prussian blue/graphene | Nafion 117 | Previous reactor | Graphite rods | 80 | 1000 | 530 | 15.63 W·m−3 | [ |
In the second column, “S” is for the single-air cathode MFC and “D” is for the dual-chamber MFC including the “H style” MFC. “-” means that it is not mentioned in the research. In the fourth column, “NO” represents membrane-free, and CEM represents cation exchange membrane.