Fabrication of Artificial Leaf to Develop Fluid Pump Driven by Surface Tension and Evaporation
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Summary
It is shown that the microchannels in agarose gel greatly decrease the flow resistance in dye diffusion and permeability experiments and add the titanium nano particles to increase the wettability of the structure, which can be as large as 7.9 kPa.
- Type
- article
- Published
- 2017-11-07
- Cited by
- 20
- References
- 37
- Access
- Open access
- OpenAlex
- https://openalex.org/W2766464599
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:3208082
Keywords
Laplace pressure, Materials science, Surface tension, Wetting, Transpiration
References
- Porous Bead-Based Diagnostic Platforms: Bridging the Gaps in Healthcare
- Focused Flow Micropump Using Ultrasonic Flexural Plate Waves
- Interfacial Science: An Introduction
- Superhydrophobic “Pump”: Continuous and Spontaneous Antigravity Water Delivery
- Stomata‐Inspired Membrane Produced Through Photopolymerization Patterning
- Pumpless evaporative cooling of actively heated surfaces
- A micropump based on water potential difference in plants
- A two-dimensional paper network format that enables simple multi-step assays for use in low-resource settings in the context of malaria antigen detection
- Pore size of agarose gels by atomic force microscopy
- A piezoelectric micropump based on micromachining of silicon
- A Microfluidic Pump/Valve Inspired by Xylem Embolism and Transpiration in Plants
- Semiconductor nanoparticle-based hydrogels prepared via self-initiated polymerization under sunlight, even visible light
- A bio-inspired micropump based on stomatal transpiration in plants.
- A passive pumping method for microfluidic devices.
- A review of micropumps
- A thermopneumatic micropump based on micro-engineering techniques
- The transpiration of water at negative pressures in a synthetic tree
- The use of a micropump based on capillary and evaporation effects in a microfluidic flow injection chemiluminescence system.
- Experimental characterization of the effects of geometric parameters on evaporative pumping
- Super-porous nanocomposite PNIPAm hydrogels reinforced with titania nanoparticles, displaying a very fast temperature response as well as pH-sensitivity
Cited by
- Oil-Water Separation using Synthetic Trees.
- Passive water ascent in a tall, scalable synthetic tree
- Controlling the release of amphiphilic liposomes from alginate hydrogel particles for antifouling paint.
- Transpiration through hydrogels
- Tree-Inspired Water Harvesting
- Insight into the Design and Fabrication of a Leaf-Mimicking Micropump
- Supercritical carbon dioxide decellularization of plant material to generate 3D biocompatible scaffolds
- Synthetic trees for enhanced solar evaporation and water harvesting
- Modeling transpiration in synthetic trees
- Microfluidic Evaporation, Pervaporation, and Osmosis: From Passive Pumping to Solute Concentration.
- Transpiration-powered desalination water bottle.
- Particle-Based Imaging Tools Revealing Water Flows in Maize Nodal Vascular Plexus
- The Ordered Mesoporous Barium Ferrite Compounded with Nitrogen-Doped Reduced Graphene Oxide for Microwave Absorption Materials.
- Oil Sequestration in Synthetic Trees with Nanoporous Leaves and Oleophilic Roots
- Sustainable bio-inspired water pump using a thermo-pneumatic phenomenon with a blinking light
- Evaporative cooling promotion using macroporous hydrogels with stable water transport and evaporation path
- Luffa cylindrica-inspired powerless micropump: long-term, high-flow operation and energy-generation application.
- Constructing small‐sized oriented pores and an ultrathin photothermal conversion layer to boost solar‐driven interfacial evaporation
- Temperature-Dependent Water Slip Flow Combined with Capillary Evaporation in Graphene Nanochannels
- Particle-based Imaging Tools Revealing Water Flows in Maize Nodal Vascular Plexus
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