Computational Modelling — Solar-driven ionic power generation: Via a film of nanocellulose @ conductive metal-organic framework

Measurement evidence

Computational Modelling

Solar-driven ionic power generation: Via a film of nanocellulose @ conductive metal-organic framework · Zhou S., Qiu Z., Stromme M. et al. · Energy and Environmental Science · 2021 · 900-905

1 measurement group · 2 results

Reported values remain attached to the sample, method, conditions, extraction quality and source location that produced them.

COMSOL Multiphysics 5.4 laminar-flow simulation

Freestanding CCM film · Thin Film

Simplified 2D interconnected network with 20 nm mesoporous and 2 nm microporous channels; upper boundary water-loss rate 0.67 um s-1.

Atmosphere
model
Geometry
2D channel-network model
Context
model of CCM film
Measurement source
p014 · Supplementary Results · Fig. S6
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
COMSOL model channel diameters20 nm mesoporous and 2 nm microporous channelsText
Exact Reported
p014 · Supplementary Results · Fig. S6
COMSOL upper-boundary water-loss rate0.67 um s-1Text
Exact Reported
p014 · Supplementary Results · Fig. S6