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Condensation on Slippery Asymmetric Bumps

TLDR
A conceptually different design approach is presented—based on principles derived from Namib desert beetles, cacti, and pitcher plants—that synergistically combines these aspects of condensation and substantially outperforms other synthetic surfaces.
Abstract
Controlling dropwise condensation is fundamental to water-harvesting systems, desalination, thermal power generation, air conditioning, distillation towers, and numerous other applications. For any of these, it is essential to design surfaces that enable droplets to grow rapidly and to be shed as quickly as possible. However, approaches based on microscale, nanoscale or molecular-scale textures suffer from intrinsic trade-offs that make it difficult to optimize both growth and transport at once. Here we present a conceptually different design approach—based on principles derived from Namib desert beetles, cacti, and pitcher plants—that synergistically combines these aspects of condensation and substantially outperforms other synthetic surfaces. Inspired by an unconventional interpretation of the role of the beetle’s bumpy surface geometry in promoting condensation, and using theoretical modelling, we show how to maximize vapour diffusion fluxat the apex of convex millimetric bumps by optimizing the radius of curvature and cross-sectional shape. Integrating this apex geometry with a widening slope, analogous to cactus spines, directly couples facilitated droplet growth with fast directional transport, by creating a free-energy profile that drives the droplet down the slope before its growth rate can decrease. This coupling is further enhanced by a slippery, pitcher-plant-inspired nanocoating that facilitates feedback between coalescence-driven growth and capillary-driven motion on the way down. Bumps that are rationally designed to integrate these mechanisms are able to grow and transport large droplets even against gravity and overcome the effect of an unfavourable temperature gradient. We further observe an unprecedented sixfold-higher exponent of growth rate, faster onset, higher steady-state turnover rate, and a greater volume of water collected compared to other surfaces. We envision that this fundamental understanding and rational design strategy can be applied to a wide range of water-harvesting and phase-change heat-transfer applications.

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Fog Harvesting Devices Inspired from Single to Multiple Creatures: Current Progress and Future Perspective

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References
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Journal ArticleDOI

A multifunctional graphene composite coating with switchable wettability

TL;DR: In this paper, a multifunctional graphene composite coating (MGCC) with switchable wettability was fabricated by simple methods, which can achieve reversible wetability transformation under UV or IR irradiation.
Journal ArticleDOI

Morphological transformation of surface femtodroplets upon dissolution

TL;DR: The morphological evolution of a dissolving femtoliter droplet pinned on multiple microdomains is studied to offer insights into design and prepararion of the rich and complex morphology of liquid patterns via simple surface premicropatterns.
Journal ArticleDOI

Bioinspired Unidirectional Liquid Transport Micro-nano Structures: A Review

TL;DR: In this article, a review summarizes the current progresses of natural unidirectional liquid transport on 1-dimensional linear structure and 2-dimensional surface structure, and various liquid transport regulation strategies are also summarized for the control of transport speed, direction guiding, etc.
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Sorbent-based air water-harvesting systems: progress, limitation, and consideration

TL;DR: In this article, a review paper discusses and presents progress in the fields of sorbent materials and condensation and system design and future considerations in accelerating the commercialization of these technologies.
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Geospatial Climatic Factors Influence Water Production of Solar Desiccant Driven Atmospheric Water Capture Devices.

TL;DR: This work uses Monte Carlo simulations and geospatial mapping to integrate material and system parameters from literature with United States spatial and temporal climate data to pinpoint key driving parameters for solar desiccant driven AWC and forecast AWC potential (L/m2/day).