How Grain Boundaries and Interfacial Electrostatic Interactions Modulate Water Desalination Via Nanoporous Hexagonal Boron Nitride
Ananth Govind Rajan, Bharat Bhushan Sharma

TL;DR
This study uses molecular dynamics and DFT calculations to explore how grain boundaries and electrostatic interactions influence water desalination performance in nanoporous hexagonal boron nitride membranes, revealing trade-offs between water flow and ion rejection.
Contribution
It provides new insights into how grain boundary configurations and surface charges affect water and ion transport in bicrystalline hBN membranes, guiding future membrane design.
Findings
Grain boundaries modify nanopore shapes and sizes.
Bicrystalline hBN with 13.2° misorientation improves water flow by ~30%.
Electrostatic interactions significantly influence water flow rates.
Abstract
Researchers are currently exploring nanoporous two-dimensional materials, such as hexagonal boron nitride (hBN), as potential desalination membranes. Here, we study the effect of grain boundaries (GBs) and interfacial electrostatic interactions on the desalination performance of bicrystalline nanoporous hBN, using classical molecular dynamics simulations supported by quantum-mechanical density functional theory (DFT) calculations. We investigate three different nanoporous bicrystalline hBN configurations, with symmetric tilt GBs having misorientation angles of 13.2{\deg}, 21.8{\deg}, and 32.2{\deg}. We find that grain boundaries alter the areas and shapes of nanopores in bicrystalline hBN, as compared to the nanopores in monocrystalline hBN. We observe that, although bicrystalline nanoporous hBN with a misorientation angle of 13.2{\deg} shows improved water flow rate by ~30%, it…
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