Exploring charge accumulation mechanisms in graphite and aluminum-based hygrogenerators: experimental and theoretical perspectives (original) (raw)
References
S.A. Elias, Climate change and energy, in Encyclopedia of the Anthropocene. ed. by D.A. Dellasala, M.I. Goldstein (Elsevier, Oxford, 2018), pp.457–466 Chapter Google Scholar
Y. Li, J. Yu, Y. Wei, Y. Wang, Z. Feng, L. Cheng, Z. Huo, Y. Lei, Q. Sun, Recent progress in self-powered wireless sensors and systems based on teng. Sensors. 23(3), 1329 (2023) ArticleADS Google Scholar
N. Wang, D. Zhang, X. Zhao, Nanogenerators: A strong backing for human-centered intelligent self-powered medical systems. Energy Technol. 12(5), 2301300 (2024) Article Google Scholar
B. Meng, W. Tang, X.S. Zhang, M.D. Han, X.M. Sun, W. Liu, H.X. Zhang, A high performance triboelectric generator for harvesting low frequency ambient vibration energy, in 2014 IEEE 27th International Conference on Micro Electro Mechanical Systems (MEMS) (2014), pp. 346–349
Y. Wu, Y. Li, Y. Tao, L. Sun, C. Yu, Recent advances in the material design for intelligent wearable devices. Mater. Chem. Front. 7, 3278–3297 (2023) Article Google Scholar
W. Yang, J. Chen, G. Zhu, J. Yang, P. Bai, Y. Su, Q. Jing, X. Cao, Z.L. Wang, Harvesting energy from the natural vibration of human walking. ACS Nano. 7, 11317–11324 (2013) Article Google Scholar
Y. Yang, G. Zhu, H. Zhang, J. Chen, X. Zhong, Z.H. Lin, Y. Su, P. Bai, X. Wen, Z.L. Wang, Triboelectric nanogenerator for harvesting wind energy and as self-powered wind vector sensor system. ACS Nano. 7, 9461–9468 (2013) Article Google Scholar
Z. Zhou, X. Li, Y. Wu, H. Zhang, Z. Lin, K. Meng, Z. Lin, Q. He, C.C. Sun, J. Yang, Z.L. Wang, Wireless self-powered sensor networks driven by triboelectric nanogenerator for in-situ real time survey of environmental monitoring. Nano Energy. 53, 501–507 (2018) Article Google Scholar
J. Ye, J.C. Tan, High-performance triboelectric nanogenerators incorporating chlorinated zeolitic imidazolate frameworks with topologically tunable dielectric and surface adhesion properties. Nano Energy. 114, 108687 (2023) Article Google Scholar
K.S. Moreira, E. Lorenzett, A.L. Devens, Y.A.S. Campo, D. Mehler, T.A.L. Burgo, Low-cost elastomer-based flexoelectric devices. J. Appl. Phys. 129, 234502 (2021)
K.S. Moreira, Y.A.S. Campo, E. Lorenzett, T.A.L. Burgo, Low-cost triboelectric nanogenerator based on aseptic carton package. Results in Engineering. 17, 100965 (2023) Article Google Scholar
S. Lin, L. Xu, W. Tang, X. Chen, Z.L. Wang, Z.L. Wang, Electron transfer in nano-scale contact electrification: Atmosphere effect on the surface states of dielectrics. Nano Energy. 65, 103956 (2019) Article Google Scholar
T.R.D. Ducati, L.H. Simões, F. Galembeck, Charge partitioning at gas-solid interfaces: humidity causes electricity buildup on metals. Langmuir. 26, 13763–13766 (2010) Article Google Scholar
Y. Fang, L. Chen, Y. Sun, W.P. Yong, S. Soh, Anomalous charging behavior of inorganic materials. J. Phys. Chem. C. 122(21), 11414–11421 (2018) Article Google Scholar
K.S. Moreira, D. Lermen, L.P.D. Santos, F. Galembeck, T.A.L. Burgo, Flexible, low-cost and scalable, nanostructured conductive paper-based, efficient hygroelectric generator. Energy Environ. Sci. 14, 353–358 (2021) Article Google Scholar
T.A.L. Burgo, L.B.S. Balestrin, F. Galembeck, Corona charging and potential decay on oxidized polyethylene surfaces. Polymer Degradation and Stability. 104, 11–17 (2014) Article Google Scholar
L.C. Soares, S. Bertazzo, T.A.L. Burgo, V. Baldim, F. Galembeck, A new mechanism for the electrostatic charge build-up and dissipation in dielectrics. J. Braz. Chem. Soc. 19, 277–286 (2008) Article Google Scholar
J.S. Bernardes, C.A. Rezende, F. Galembeck, Electrostatic patterns on surfactant coatings change with ambient humidity. J. Phys. Chem. C. 114, 19016–19023 (2010) Article Google Scholar
R.F. Gouveia, J.S. Bernardes, T.R.D. Ducati, F. Galembeck, Acid-base site detection and mapping on solid surfaces by kelvin force microscopy (kfm). Analytical Chemistry. 84, 10191–10198 (2012)
K.N. Kudin, R. Car, Why are water-hydrophobic interfaces charged? J. Am. Chem. Soc. 130(12), 3915–3919 (2008) Article Google Scholar
J.R. Bordin, C.F.M. Jauris, P.R.B. Côrtes, W.S. Araújo, L.S. Moreira, A.P. Santos, M.B. Leão, E.E. Moraes, M.J. Piotrowski, M.H. Köhler, Computational condensed matter science contributions to addressing water emerging contaminant pollution: a comprehensive review. J. Phys.: Condensed Matter. 37(11), 113004 (2025) Google Scholar
A. Gray-Weale, J.K. Beattie, An explanation for the charge on water’s surface. Phys. Chem. Chem. Phys. 11, 10994–11005 (2009) Article Google Scholar
P.K. Panda, D. Singh, M.H. Köhler, D.D. Vargas, Z.L. Wang, R. Ahuja, Contact electrification through interfacial charge transfer: a mechanistic viewpoint on solid–liquid interfaces. Nanoscale Adv. 4, 884–893 (2022) ArticleADS Google Scholar
K. Zhang, L. Cai, A. Nilghaz, G. Chen, X. Wan, J. Tian, Enhancing output performance of surface-modified wood sponge-carbon black ink hygroelectric generator via moisture-triggered galvanic cell. Nano Energy. 98, 107288 (2022) Article Google Scholar
G. Ren, Z. Wang, B. Zhang, X. Liu, J. Ye, Q. Hu, S. Zhou, A facile and sustainable hygroelectric generator using whole-cell geobacter sulfurreducens. Nano Energy. 89, 106361 (2021) Article Google Scholar
G. Ren, Q. Hu, J. Ye, X. Liu, S. Zhou, Z. He, Hydrovoltaic effect of microbial films enables highly efficient and sustainable electricity generation from ambient humidity. Chem. Eng. J. 441, 135921 (2022) Article Google Scholar
Y. Han, B. Lu, C. Shao, T. Xu, Q. Liu, Y. Liang, X. Jin, J. Gao, Z. Zhang, A hygroelectric power generator with energy self-storage. Chem. Eng. J. 384, 123366 (2020) Article Google Scholar
Y. Li, J. Cui, H. Shen, C. Liu, P. Wu, Z. Qian, Y. Duan, D. Liu, Useful spontaneous hygroelectricity from ambient air by ionic wood. Nano Energy. 96, 107065 (2022) Article Google Scholar
Y. Wang, M. Dai, H. Wu, L. Xu, T. Zhang, W. Chen, Z.L. Wang, Y. Yang, Moisture induced electricity for self-powered microrobots. Nano Energy. 90, 106499 (2021) Article Google Scholar
C. Shao, J. Gao, T. Xu, B. Ji, Y. Xiao, C. Gao, Y. Zhao, L. Qu, Wearable fiberform hygroelectric generator. Nano Energy. 53, 698–705 (2018) Article Google Scholar
Y. Huang, H. Cheng, C. Yang, P. Zhang, Q. Liao, H. Yao, G. Shi, L. Qu, Interface-mediated hygroelectric generator with an output voltage approaching 1.5 volts. Nature Commun. 9, (2018)
Y. Zhang, D. Long, H. Feng, K. Shang, X. Lu, C. Fu, Z. Jiang, J. Fang, Y. Yao, Q.-C. He, T. Yang, Bioinspired ion channel receptor based on hygroelectricity for precontact sensing of living organism. Biosensors and Bioelectronics. 247, 115922 (2024) Article Google Scholar
G. Ren, Z. Wang, B. Zhang, X. Liu, J. Ye, Q. Hu, S. Zhou, A facile and sustainable hygroelectric generator using whole-cell geobacter sulfurreducens. Nano Energy. 89, 106361 (2021) Article Google Scholar
H. Baek, J. Choi, S. Jeon, Moisture-induced power generator fabricated on a lateral field-excited quartz resonator. Sci. Rep. 14, 10817 (2024) ArticleADS Google Scholar
C. Shao, J. Gao, T. Xu, B. Ji, Y. Xiao, C. Gao, Y. Zhao, L. Qu, Wearable fiberform hygroelectric generator. Nano Energy. 53, 698–705 (2018) Article Google Scholar
E.S. Ferreira, D.S. Silva, T.A.L. Burgo, B.C. Batista, F. Galembeck, Graphite exfoliation in cellulose solutions. Nanoscale. 9, 10219–10226 (2017) Google Scholar
A.P. Thompson, H.M. Aktulga, R. Berger, D.S. Bolintineanu, W.M. Brown, P.S. Crozier, P.J. In’t Veld, A. Kohlmeyer, S.G. Moore, T.D. Nguyen et al., Lammps-a flexible simulation tool for particle-based materials modeling at the atomic, meso, and continuum scales. Computer Physics Communications. 271, 108171 (2022) Article Google Scholar
H.J.C. Berendsen, J.R. Grigera, T.P. Straatsma, The missing term in effective pair potentials. J. Phys. Chem. 91, 6269–6271 (1987) Article Google Scholar
R. Vácha, D. Horinek, M.L. Berkowitz, P. Jungwirth, Hydronium and hydroxide at the interface between water and hydrophobic media. Phys. Chem. Chem. Phys. 10, 4975–4980 (2008) Article Google Scholar
J.-P. Ryckaert, G. Ciccotti, H.J. Berendsen, Numerical integration of the cartesian equations of motion of a system with constraints: Molecular dynamics of n-alkanes. J. Comput. Phys. 23, 327–341 (1977) ArticleADS Google Scholar
S. Nosé, A molecular dynamics method for simulations in the canonical ensemble. Mol. Phys. 52, 255 (1984) ArticleADS Google Scholar
T. Fu, Y. Mao, Y. Tang, Y. Zhang, W. Yuan, Molecular dynamics simulation on rapid boiling of thin water films on cone-shaped nanostructure surfaces. Nanoscale and microscale thermophysical engineering. 19, 17–30 (2015) ArticleADS Google Scholar
E. Menéndez-Proupin, G. Gutiérrez, Electronic properties of bulk \(\gamma \)-al\(_2\)o\(_3\). Phys. Rev. B. 72, 035116 (2005) ArticleADS Google Scholar
G. Hummer, J.C. Rasaiah, J.P. Noworyta, Water conduction through the hydrophobic channel of a carbon nanotube. Nature. 414, 188–190 (2001) ArticleADS Google Scholar
M.H. Köhler, J.R. Bordin, M.C. Barbosa, 2d nanoporous membrane for cation removal from water: Effects of ionic valence, membrane hydrophobicity, and pore size. J. Chem. Phys. 148, 222804 (2018) ArticleADS Google Scholar
R.F. Bader, Atoms in molecules. Accounts of chemical research. 18, 9–15 (1985) Article Google Scholar
W. Tang, E. Sanville, G. Henkelman, A grid-based bader analysis algorithm without lattice bias. J. Phys.: Cond. Matter. 21, 084204 (2009) ADS Google Scholar
M. Yu, D.R. Trinkle, Accurate and efficient algorithm for bader charge integration. J. Chem. Phys. 134, 064111 (2011) ArticleADS Google Scholar
P. Giannozzi, S. Baroni, N. Bonini, M. Calandra, R. Car, C. Cavazzoni, D. Ceresoli, G.L. Chiarotti, M. Cococcioni, I. Dabo et al., Quantum espresso: a modular and open-source software project for quantum simulations of materials. J. Phys.: Cond. Matter. 21, 395502 (2009) Google Scholar
P. Giannozzi, O. Andreussi, T. Brumme, O. Bunau, M.B. Nardelli, M. Calandra, R. Car, C. Cavazzoni, D. Ceresoli, M. Cococcioni et al., Advanced capabilities for materials modelling with quantum espresso. J. Phys.: Cond. Matter. 29, 465901 (2017) Google Scholar
G. Kresse, D. Joubert, From ultrasoft pseudopotentials to the projector augmented-wave method. Phys. Rev. B. 59, 1758 (1999) ArticleADS Google Scholar
J.P. Perdew, K. Burke, M. Ernzerhof, Generalized gradient approximation made simple. Phys. Rev. Lett. 77, 3865 (1996) ArticleADS Google Scholar
K. Lee, É.D. Murray, L. Kong, B.I. Lundqvist, D.C. Langreth, Higher-accuracy van der waals density functional. Phys. Rev. B. 82, 081101 (2010) ArticleADS Google Scholar
V.R. Cooper, Van der waals density functional: An appropriate exchange functional. Phys. Rev. B. 81, 161104 (2010) ArticleADS Google Scholar
H.J. Monkhorst, J.D. Pack, Special points for brillouin-zone integrations. Phys. Rev. B. 13, 5188 (1976) ArticleADSMathSciNet Google Scholar
Q. Hu, G. Ren, J. Ye, B. Zhang, C. Rensing, S. Zhou, Hygroelectric-photovoltaic coupling generator using self-assembled bio-nano hybrids. Chem. Eng. J. 452, 139169 (2023) Article Google Scholar
Y. Li, J. Cui, H. Shen, C. Liu, P. Wu, Z. Qian, Y. Duan, D. Liu, Useful spontaneous hygroelectricity from ambient air by ionic wood. Nano Energy. 96, 107065 (2022) Article Google Scholar
X. Liu, H. Gao, J.E. Ward, X. Liu, B. Yin, T. Fu, J. Chen, D.R. Lovley, J. Yao, Power generation from ambient humidity using protein nanowires. Nature. 578, 550–554 (2020) ArticleADS Google Scholar
M. Sun, Q. Lu, Z.L. Wang, B. Huang, Understanding contact electrification at liquid-solid interfaces from surface electronic structure. Nature Communications. 12(1), (2021)
S. Lin, L. Xu, A. Chi Wang, Z.L. Wang, Quantifying electron-transfer in liquid-solid contact electrification and the formation of electric double-layer. Nature Communications. 12(1), (2020)
L. Pilon, H. Wang, A. d’Entremont, Recent advances in continuum modeling of interfacial and transport phenomena in electric double layer capacitors. J. Electrochem. Society. 162(5), 5158 (2015) Article Google Scholar
J. Dong, S. Huang, J. Luo, J. Zhao, F.R. Fan, Z.-Q. Tian, Supercapacitor-inspired triboelectric nanogenerator based on electrostatic double layer. Nano Energy. 95, 106971 (2022) Article Google Scholar
H. Luo, H. Wang, L. Yang, H. Wu, S. Kang, S. Yong, R. Liao, J. Wang, Z.L. Wang, In situ nanofluid dispersion monitoring by liquid-solid triboelectric nanogenerator based on tuning the structure of the electric double layer. Adv. Funct. Mater. 32, 2200862 (2022) Article Google Scholar
P. Zhang, M. Feng, X. Xu, Double-layer distribution of hydronium and hydroxide ions in the air–water interface. ACS Physical Chemistry Au. 4, 336–346 (2024) Article Google Scholar
M.H. Köhler, J.R. Bordin, M.C. Barbosa, Ion flocculation in water: From bulk to nanoporous membrane desalination. J. Mol. Liq. 277, 516–521 (2019) Article Google Scholar
S. Homaeigohar, M. Elbahri, Graphene membranes for water desalination. NPG Asia Materials. 9, 427–427 (2017) Article Google Scholar
E.N. Wang, R. Karnik, Graphene cleans up water. Nat. Nanotechnol. 7, 552–554 (2012)
F. Zhan, A.C. Wang, L. Xu, S. Lin, J. Shao, X. Chen, Z.L. Wang, Electron transfer as a liquid droplet contacting a polymer surface. ACS nano. 14, 17565–17573 (2020) Article Google Scholar
A.C. Neto, F. Guinea, N.M. Peres, K.S. Novoselov, A.K. Geim, The electronic properties of graphene. Rev. Mod. Phys. 81, 109 (2009) ArticleADS Google Scholar
I.D. Aditya, D. Matsunaka, Y. Shibutani, G. Yamamoto, First-principles study of interfacial interaction between carbon nanotube and al\(_2\)o\(_3\) (0001). J. Appl. Phys. 121, (2017)
L. Zhang, Y. Wu, Y. Liu, H. Li, Dft study of single water molecule adsorption on the (100) and (101) surfaces of kh\(_2\)po\(_4\). RSC advances. 7, 26170–26178 (2017) ArticleADS Google Scholar
K.D. Jordan, A. HeBelmann, Comment on “physisorption of water on graphene: subchemical accuracy from many-body electronic structure methods’’. J. Phys. Chem. C. 123, 10163–10165 (2019) Article Google Scholar
Y. Wang, Y. Nagata, M. Bonn, Substrate effect on charging of electrified graphene/water interfaces. Faraday Discuss. 249, 303–316 (2024) ArticleADS Google Scholar
E. Kim, D. Kim, K. Kwak, Y. Nagata, M. Bonn, M. Cho, Wettability of graphene, water contact angle, and interfacial water structure. Chem. 8(5), 1187–1200 (2022) Article Google Scholar
B. Gaire, S. Singla, A. Dhinojwala, Screening of hydrogen bonding interactions by a single layer graphene. Nanoscale. 13, 8098–8106 (2021) Article Google Scholar
L. Zhang, C. Tian, G.A. Waychunas, Y.R. Shen, Structures and charging of \(alpha\)-alumina (0001)/water interfaces studied by sum-frequency vibrational spectroscopy. J. Amer. Chem. Soc. 130, 7686–7694 (2008) Article Google Scholar
A. Shokuhi Rad, V. Pouralijan Foukolaei, Density functional study of al-doped graphene nanostructure towards adsorption of co, co2 and h2o. Synthetic Metals. 210, 171–178 (2015) Article Google Scholar
P. Wu, Y. Zhang, Y. Liu, H. Yang, K. Shen, G. Li, S. Wang, S. Ding, S. Zhang, Experimental and theoretical research on pore-modified and k-doped al2o3 catalysts for cos hydrolysis: The role of oxygen vacancies and basicity. Chem. Eng. J. 450, 138091 (2022) Article Google Scholar
J. Dockal, M. Lísal, F. Moučka, Molecular dynamics of the interfacial solution structure of alkali-halide electrolytes at graphene electrodes. J. Mol. Liq. 353, 118776 (2022) Article Google Scholar
S.M. Piontek, M. DelloStritto, B. Mandal, T. Marshall, M.L. Klein, E. Borguet, Probing heterogeneous charge distributions at the \(\alpha \)-al2o3(0001)/h2o interface. J. Am. Chem. Soc. 142, 12096–12105 (2020) Article Google Scholar