Electrospinning of Nanofibers for Energy Applications
Abstract
:1. Introduction
2. Electrospinning
3. Applications
3.1. Lithium-Based Batteries
3.1.1. Li-Ion Batteries
3.1.1.1. Cathode Materials
3.1.1.2. Anode Materials
3.1.1.3. Separator Materials
3.1.2. Li-S and Li-O2 Batteries
3.1.2.1. Li-S Batteries
3.1.2.2. Lithium-O2 Batteries
3.2. Fuel Cells
3.2.1. Electrode Materials
3.2.2. Electrolyte Membrane
3.3. Dye-Sensitized Solar Cells
3.3.1. Photoanode
3.3.2. Counter Electrodes
3.3.3. Electrolytes of DSSCs
3.4. Supercapacitors
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Material | Diameter/μm | Structure | DC (after Cycle Number)/mAh·g−1 | Rate | Reference |
---|---|---|---|---|---|
LiCoO2 | 0.5–2 | fiber | 123 (20) | 20 mA/g | [41] |
LiCoO2–MgO | 1–2 | core-shell fiber | 163 (40) | 20 mA/g | [42] |
LiNi0.5Co0.2Mn0.3O2 | 0.3 | particle | 160 (5) | 20 mA/g | [45] |
LiNi1/3Co1/3Mn1/3O2 | 0.1–0.8 | nanofiber | 116 (30) | 85 mA/g | [46] |
Li1.2Mn0.54Ni0.13Co0.13O2/CNFs | - | nanofiber | 176.7 (100) | 1 C | [47] |
Li1.2Ni0.17Co0.17Mn0.5O2 | 0.1–0.5 | nanofiber | 141–205 (20) | 14.2 mA/g | [48] |
LiFePO4/C | - | fiber | 131–145 (0.1) | - | [51] |
LiFePO4/CNT/C | 0.168 | nanofiber | 169 (average) | 0.05 C | [52] |
LiFePO4/CNT/C | - | core-shell fiber | - | - | [53] |
V2O5 | 0.2–0.5 | nanofiber | 240 (25) | 0.1 mA/cm2 | [56] |
V2O5 | 0.2–0.4 | hierarchical porous nanofiber | 133.9 (100) | 800 mA/g | [57] |
V2O5 | 0.1–0.2 | hierarchical nanowire | 201 (30) | 30 mA/g | [58] |
V2O5 | 0.3–0.5 | porous nanotube | 130.5 (50) | 0.2 C | [59] |
LiMn2O4 | 0.17 | porous network | 146 (1) | 0.1 C | [60] |
Li3V2(PO4)3/CNF | 0.3 | nanofiber | 102 (1000) | 20 C | [61] |
Li3V2(PO4)3/CNF | 0.18–0.43 | nanofiber | 118.9 (1000) | 20 C | [62] |
LiNi0.5Mn1.5O4 | <0.2 | nanofiber | 138 (1) | 50 mA/g | [63] |
LiNi0.5Mn1.5O4 | 0.05–0.25 | nanofiber | 120 (50) | 0.01 mA/cm | [64] |
LiNi0.5Mn1.5O4 | 0.05–0.1 | nanofiber | 300 (1) | 27 mA/g | [65] |
Material | Diameter/μm | Structure | DC (after Cycle Number)/mAh·g−1 | Rate | Reference |
---|---|---|---|---|---|
Carbon | 0.2–0.3 | nanofiber | 350 | 100 mA/g | [66] |
Carbon | 0.3–0.4 | nanofiber | 255 (200) | 0.2 A/g | [67] |
Carbon | 0.1–0.2 | porous nanofiber | 1780 (40) | 50 mA/g | [68] |
Carbon | 0.9–1.2 | hollow nanofiber | 900.6 (1) | 100 mA/g | [69] |
Ag/C | ~0.3 | hollow nanofiber | 600.15 (100) | 50 mA/g | [70] |
GeOx@C | 1 | core-shell | 875 (400) | 160 mA/g | [71] |
Co3O4/CNF | 0.8–1.2 | core-shell nanowire | 795 (50) | 100 mA/g | [73] |
Mn3O4/CNF | 0.5–1 | hierarchically mesoporous | 760 (50) | 100 mA/g | [74] |
N/GeO2-CNFs | 0.075 | nanofiber | 1031 (200) | 100 mA/g | [75] |
Si/C | 2–5 | hollow fiber | 725 (40) | 0.2 A/g | [78] |
Si/C | 0.6–0.8 | porous nanofiber | 870 (100) | 0.1 A/g | [79] |
Si/C | — | hollow fiber | 1045 (20) | 100 mA/g | [80] |
Si/C | 0.186 | nanofiber | 1215.2 (50) | 600 mA/g | [81] |
Si/C | ~2 | core-shell | 603 (300) | 0.5 A/g | [82] |
Si/C | ~0.2 | Fiber paper | 1267 (100) | 500 mA/g | [83] |
Sn/C | 0.1–0.18 | core-shell | 546.7 (100) | 40 mA/g | [85] |
Sn/C | ~0.2 | porous nanofiber | 774 (200) | 0.8 A/g | [87] |
Sn/C | 0.15–0.25 | Hollow nanofiber | 737 (200) | 0.5 C | [88] |
TiO2 | ~0.119 | nanofiber | 176.7 (100) | 0.1 C | [91] |
TiO2 | ~0.5 | fiber-in-tube | 177 (1000) | 200 mA/g | [92] |
Co3O4/TiO2 | ~0.3 | hierarchical | 602.7 (480) | 200 mA/g | [93] |
Material | Diameter/μm | Conductivity/mS·cm−1 (T/°C) | DC (after-1st)/mAh·g−1 (Rate/C) | Anodic Stability Voltage/V (vs. Li/Li+) | Reference |
---|---|---|---|---|---|
PVdF | 1–1.65 | 1.0 (25) | - | 4.5 | [103] |
PVdF-HFP | 1 | 1.0 (20) | 136–142 (0.1) | 4.5 | [104] |
PVdF-HFP | 0.512–0.710 | 6.16 (20) | 138–184 (0.2) | 5.0 | [105] |
PVdF-HFP/SiO2 | 2–5 | 4.3 (25) | 139–170 (0.1) | - | [106] |
PVdF-HEP/SiO2 | 1–2 | 8.06 (20) | 153–170 (0.1) | >4.5 | [107] |
PVdF-HEP/PMMA | 0.200–0.350 | 2.0 (25) | 133.5–145 (0.1) | - | [108] |
PVdF-HEP/PAN | 0.320–0.490 | 1.0 (25) | 131–145 (0.1) | >4.6 | [109] |
PVdF/SiO2-PAALi | 0.750 | 3.5 (25) | 151–156.5 (0.1) | 5.05 | [110] |
PAN | 0.350 | 2.14 (25) | 135–150 (0.1) | >4.7 | [111] |
PAN | 0.880–1.260 | 1.7 (20) | 108–113 (0.5) | - | [112] |
PAN-PMMA | 0.2–1.0 | 5.1 (-) | 127–135 (0.1) | 5.2 | [113] |
PAN/SiO2 | 0.8–1.4 | 2.8–3.6 (-) | −163(0.2) | 4.75 | [114] |
PAN/SiO2 | 0.100–0.300 | 11 (-) | 127–139 (0.5) | 5.0 | [115] |
PAN/Al2O3-TEGDA-BA | 3–5 | 2.35 (25) | 240.4 (0.1) | >4.5 | [116] |
PAN-TEGDA-BA | 0.182 | 5.9 (25) | 127–163.6 (0.1) | >5.0 | [117] |
PAN-PEO | 0.250–0.330 | 5.36 (-) | 134 (0.1) | - | [118] |
PAN-LLTO | 0.250 | 1.95 (25) | 148–162 (0.2) | 5.0 | [121] |
Material | Diameter/nm | Voc/V | Jsc/mA·cm−2 | FF (%) | η (%) | Reference |
---|---|---|---|---|---|---|
CNF+Pt NPs | 250 | 0.83 | 12.66–13.33 | 65.6–68.8 | 7–8 | [193] |
CNF | 250 | 0.76 | 12.6 | 57 | 5.5 | [195] |
H-ACNF | 190/270 | 0.73 | 14.5 | 62 | 6.58 | [196] |
Meso-HACNF | 200/360 | 0.73/0.74 | 15.4/15.3 | 64/61 | 7.21/6.91 | [197] |
CNF+Co Cr NPs | - | 0.685 | 8.784 | 54 | 3.27 | [198] |
CNF+Co Ni NPs | - | 0.74 | 11.12 | 54 | 4.47 | [199] |
CNF+Co Pd NPs | 150 | 9.8 | 0.705 | 36 | 2.5 | [200] |
CNF+Cu Ni NPs | - | 0.70 | 7.67 | 65 | 3.5 | [201] |
CNF+Fe Ni NPs | 230 | 0.72 | 10.1 | 65 | 4.7 | [202] |
CNF/TiC | 280–300 | 0.73/0.72/0.72 | 9.29/9.71/9.56 | 62/64/63 | 4.2/4.5/4.3 | [204] |
Material | Voc/V | Jsc/mA·cm−2 | FF (%) | η (%) | Reference |
---|---|---|---|---|---|
PVdF-HFP | 0.75 | 12.3 | 57 | 5.21 | [208] |
PVdF-HFP | 0.78/0.76/0.77 | 5.759/6.028/5.378 | 66.18/68.05/66.27 | 2.98//3.13/2.75 | [206] |
BMImI-esPME | 0.71 | 13.10 | 69 | 6.42 | [209] |
PVdF-HFP/PS | 0.76 | 11.8 | 66 | 5.75 | [210] |
PVdF-HFP/CoS | 0.73 | 14.42 | 70 | 7.34 | [211] |
PEO-PVdF-HFP-SiO2 | 0.58/0.60/0.59 | 13.37/13.63/13.18 | 60.24/59.54/59.67 | 4.68/4.85/4.66 | [212] |
PVdF-PAN-Fe2O3 | 0.77 | 10.4 | 62 | 4.9 | [213] |
PVdF-PAN-V2O5 | 0.78 | 13.8 | 72 | 7.75 | [214] |
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Sun, G.; Sun, L.; Xie, H.; Liu, J. Electrospinning of Nanofibers for Energy Applications. Nanomaterials 2016, 6, 129. https://doi.org/10.3390/nano6070129
Sun G, Sun L, Xie H, Liu J. Electrospinning of Nanofibers for Energy Applications. Nanomaterials. 2016; 6(7):129. https://doi.org/10.3390/nano6070129
Chicago/Turabian StyleSun, Guiru, Liqun Sun, Haiming Xie, and Jia Liu. 2016. "Electrospinning of Nanofibers for Energy Applications" Nanomaterials 6, no. 7: 129. https://doi.org/10.3390/nano6070129
APA StyleSun, G., Sun, L., Xie, H., & Liu, J. (2016). Electrospinning of Nanofibers for Energy Applications. Nanomaterials, 6(7), 129. https://doi.org/10.3390/nano6070129