Scalable Bottom-Up Synthesis of Nanoporous Hexagonal Boron Nitride (<i>h</i>-BN) for Large-Area Atomically Thin Ceramic Membranes.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 39950681.
- Also identified by DOI 10.1021/acs.nanolett.4c05939 and PMC identifier 11869279.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Nanopores embedded within monolayer hexagonal boron nitride (<i>h</i>-BN) offer possibilities of creating atomically thin ceramic membranes with unique combinations of high permeance (atomic thinness), high selectivity (via molecular sieving), increased thermal stability, and superior chemical resistance. However, fabricating size-selective nanopores in monolayer <i>h</i>-BN via scalable top-down processes remains nontrivial due to its chemical inertness, and characterizing nanopore size distribution over a large area remains extremely challenging. Here, we demonstrate a facile and scalable approach of exploiting the chemical vapor deposition (CVD) process temperature to enable direct incorporation of subnanometer/nanoscale pores into the monolayer <i>h</i>-BN lattice, in combination with manufacturing compatible polymer casting to fabricate centimeter-scale nanoporous atomically thin ceramic membranes. We leverage diffusive transport of analytes including size-selective Ficoll sieving to characterize subnanometer-scale and nanoscale defects that manifest as pores in centimeter-scale <i>h</i>-BN membranes, overcoming previous limitations in large-area characterization of nanoscale defects in <i>h-</i>BN. Our approach opens a new frontier to advance atomically thin membranes to 2D ceramic materials, such as <i>h</i>-BN via facile and direct formation of nanopores, for size-selective separations.