Jing Ying Yeo
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Dry Transfer of CVD Graphene Film Using Adhesion Switchable Ferroelectric Polymers
Conflict of Interest The authors declare no conflict of interest. Data Availability Statement The data that support the findings of this study are available in the supplementary material of this article. Supporting Information Filename Description adma71454-sup-0001-SuppMat.pdf1.8 MB Supporting Information adma71454-sup-0002-MovieS1.mp47 MB Supplemental Movie 1 References 1, , , , , , , , , , , , , , , , , , , Nature 2024, 630, 636. 2, , , , , , , , , , , , , Nature 2021, 596, 519. 3, , , , , Chem.
Solution‐Processable, Ladder‐Branched Polyimides of Intrinsic Microporosity by [4+4] Cycloaddition for Membrane Gas Separation
1 Introduction Industrial chemical separations account for 10–15% of total global energy consumption.[1] This reality has led to an urgent demand for energy-efficient separation technologies to reduce costs and mitigate emissions that contribute to climate change.[1-3] Membrane technology is a promising alternative to conventional processes (e.g., distillation and absorption) due to its high energy efficiency, operational simplicity, and small footprint.[4, 5] In particular, membrane-based...
Fine-tuning ultramicroporosity in PIM-1 membranes by aldehyde functionalization for efficient hydrogen separation
Fine-tuning ultramicroporosity in PIM-1 membranes by aldehyde functionalization for efficient hydrogen separation† Polymers of intrinsic microporosity (PIMs) have shown great potential for membrane-based hydrogen separations. The archetypal PIM, PIM-1, features hydrogen permeability that is 2–3 orders of magnitude higher than that of conventional polymers.
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