Cite the Following Article
Measuring air layer volumes retained by submerged floating-ferns Salvinia and biomimetic superhydrophobic surfaces
Matthias J. Mayser, Holger F. Bohn, Meike Reker and Wilhelm Barthlott
Beilstein J. Nanotechnol. 2014, 5, 812–821.
https://doi.org/10.3762/bjnano.5.93
How to Cite
Mayser, M. J.; Bohn, H. F.; Reker, M.; Barthlott, W. Beilstein J. Nanotechnol. 2014, 5, 812–821. doi:10.3762/bjnano.5.93
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- Akter, S.; Mahmud, M. F.; Rahman, A. N. M. M.; Pritha, N. M.; Hasan, M. M.; Ullah, M. H.; Kanon, M. R.; Ahona, F. T.; Bristy, B. F. Application of Low-Temperature Air Plasma for the Enhancement of Defense Fabric's Self-Cleaning Property. ACS omega 2024, 9, 41053–41066. doi:10.1021/acsomega.4c06893
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- Li, M.; Mao, A.; Guan, Q.; Saiz, E. Nature-inspired adhesive systems. Chemical Society reviews 2024, 53, 8240–8305. doi:10.1039/d3cs00764b
- Chang, Y.; Liu, F. Review of Waterproof Breathable Membranes: Preparation, Performance and Applications in the Textile Field. Materials (Basel, Switzerland) 2023, 16, 5339. doi:10.3390/ma16155339
- Wagner, J.; Akdere, M.; Gürbüz, K.; Beek, L.; Klopp, K.; Ditsche, P.; Mail, M.; Gries, T.; Barthlott, W. Oil adsorbing and transporting surfaces: a simulative determination of parameters for bionic functional textiles. Bioinspiration & biomimetics 2023, 18, 36006–036006. doi:10.1088/1748-3190/acc224
- Samah, W.; Clain, P.; Rioual, F.; Fournaison, L.; Delahaye, A. Review on ice crystallization and adhesion to optimize ice slurry generators without moving components. Applied Thermal Engineering 2023, 223, 119974. doi:10.1016/j.applthermaleng.2023.119974
- Gomes, A. R.; Freitas, Í. N.; Luz, T. M. d.; Guimarães, A. T. B.; Araújo, A. P. d. C.; Kamaraj, C.; Rahman, M. M.; Islam, A. R. M. T.; Arias, A. H.; Silva, F. B. d.; Karthi, S.; Cruz-Santiago, O.; Silva, F. G.; Malafaia, G. Multiple endpoints of polyethylene microplastics toxicity in vascular plants of freshwater ecosystems: A study involving Salvinia auriculata (Salviniaceae). Journal of hazardous materials 2023, 450, 131069. doi:10.1016/j.jhazmat.2023.131069
- Konrad, W.; Neinhuis, C.; Roth-Nebelsick, A. Straight roads into nowhere - obvious and not-so-obvious biological models for ferrophobic surfaces. Beilstein journal of nanotechnology 2022, 13, 1345–1360. doi:10.3762/bjnano.13.111
- Kim, M.; Yoo, S.; Jeong, H. E.; Kwak, M. K. Fabrication of Salvinia-inspired surfaces for hydrodynamic drag reduction by capillary-force-induced clustering. Nature communications 2022, 13, 5181. doi:10.1038/s41467-022-32919-4
- Pezeshkpour, P.; Sachsenheimer, K.; Goralczyk, A.; Mayoussi, F.; Mader, M.; Kotz‐Helmer, F.; Helmer, D.; Rapp, B. E. A Real‐Time Capacitive Sensor to Detect the Stability of Salvinia Layers on Porous Superhydrophobic Polymers Under Shear. Advanced Materials Technologies 2022, 7. doi:10.1002/admt.202200287
- Gulfam, R.; Chen, Y. Recent Growth of Wettability Gradient Surfaces: A Review. Research (Washington, D.C.) 2022, 2022, 9873075. doi:10.34133/2022/9873075
- Li, M.; Li, C.; Blackman, B. R.; Eduardo, S. Mimicking nature to control bio-material surface wetting and adhesion. International Materials Reviews 2021, 67, 658–681. doi:10.1080/09506608.2021.1995112
- Li, M.; Li, C.; Blackman, B. R.; Eduardo, S. Mimicking nature to control bio-material surface wetting and adhesion. International Materials Reviews 2021, 1–24.
- Bing, W.; Wang, H.; Tian, L.; Zhao, J.; Jin, H.; Du, W.; Ren, L. Small Structure, Large Effect: Functional Surfaces Inspired by Salvinia Leaves. Small Structures 2021, 2, 2100079. doi:10.1002/sstr.202100079
- Periyasamy, A. P.; Militky, J.; Sachidhanandham, A.; Duraisamy, G. Nanotechnology in Textile Finishing: Recent Developments. Handbook of Nanomaterials and Nanocomposites for Energy and Environmental Applications; Springer International Publishing, 2021; pp 2509–2539. doi:10.1007/978-3-030-36268-3_55
- Mehanna, Y. A.; Sadler, E.; Upton, R. L.; Kempchinsky, A. G.; Lu, Y.; Crick, C. R. The challenges, achievements and applications of submersible superhydrophobic materials. Chemical Society reviews 2021, 50, 6569–6612. doi:10.1039/d0cs01056a
- Cai, Y.; Bing, W.; Chen, C.; Chen, Z. Gaseous Plastron on Natural and Biomimetic Surfaces for Resisting Marine Biofouling. Molecules (Basel, Switzerland) 2021, 26, 2592. doi:10.3390/molecules26092592
- Pugno, M.; Misseroni, D.; Pugno, N. M. Air-encapsulating elastic mechanism of submerged Taraxacum blowballs. Materials today. Bio 2021, 9, 100095. doi:10.1016/j.mtbio.2021.100095
- Periyasamy, A. P.; Militky, J.; Sachinandham, A.; Duraisamy, G. Nanotechnology in Textile Finishing: Recent Developments. Handbook of Nanomaterials and Nanocomposites for Energy and Environmental Applications; Springer International Publishing, 2020; pp 1–31. doi:10.1007/978-3-030-11155-7_55-1
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- CERMAN ZDENEK; STRIFFLER BORIS FELIX; WIERSCH SABINE; BARTHLOTT WILHELM. NON-WETTABLE SURFACES. EP 2254709 B1, April 18, 2018.