Tuning Hydrophilicity of Aluminum MOFs by a Mixed‐Linker Strategy for Enhanced Performance in Water Adsorption‐Driven Heat Allocation Application

Author:

Truong Bao N.12,Borges Daiane D.34,Park Jaedeuk1,Lee Ji Sun1,Jo Donghui1,Chang Jong‐San15,Cho Sung June6ORCID,Maurin Guillaume3,Cho Kyung Ho1ORCID,Lee U‐Hwang12

Affiliation:

1. Research Group for Nanocatalyst (RGN) and Chemical & Process Technology Division Korea Research Institute of Chemical Technology (KRICT) Gajeong‐Ro 141 Yuseong‐gu Daejeon 34114 Republic of Korea

2. Department of Advanced Materials and Chemical Engineering University of Science and Technology (UST) Gajeong‐Ro 217 Yuseong‐gu Daejeon 34113 Republic of Korea

3. ICGM, Univ. Montpellier, CNRS, ENSCM Montpellier 34095 France

4. Institute of Physics Federal University of Uberlândia Uberlândia MG 38408‐100 Brazil

5. Department of Chemistry Sungkyunkwan University Seobu‐Ro 2066, Jangan‐gu Suwon 16419 Republic of Korea

6. Department of Chemical Engineering Chonnam National University Yongbong‐Ro 77, Buk‐gu Gwangju 61186 Republic of Korea

Abstract

AbstractWater adsorption‐driven heat transfer (AHT) technology has emerged as a promising solution to address crisis of the global energy consumption and environmental pollution of current heating and cooling processes. Hydrophilicity of water adsorbents plays a decisive role in these applications. This work reports an easy, green, and inexpensive approach to tuning the hydrophilicity of metal–organic frameworks (MOFs) by incorporating mixed linkers, isophthalic acid (IPA), and 3,5‐pyridinedicarboxylic acid (PYDC), with various ratios in a series of Al−xIPA‐(100−x)PYDC (x: feeding ratio of IPA) MOFs. The designed mixed‐linkers MOFs show a variation of hydrophilicity along the fraction of the linkers. Representative compounds with a proportional mixed linker ratio denoted as KMF‐2, exhibit an S‐shaped isotherm, an excellent coefficient of performance of 0.75 (cooling) and 1.66 (heating) achieved with low driving temperature below 70 °C which offers capability to employ solar or industrial waste heat, remarkable volumetric specific energy capacity (235 kWh m−3) and heat‐storage capacity (330 kWh m−3). The superiority of KMF‐2 to IPA or PYDC‐containing single‐linker MOFs (CAU‐10‐H and CAU‐10pydc, respectively) and most of benchmark adsorbents illustrate the effectiveness of the mixed‐linker strategy to design AHT adsorbents with promising performance.

Funder

Korea Research Institute of Chemical Technology

Ministry of Trade, Industry and Energy

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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