KAIST · Engineering
이 교수의 연구실은 고성능 분리막 기반의 환경 및 에너지 응용 기술을 핵심으로 연구를 진행하고 있습니다. 메탈-유기 프레임워크(MOF), MXene, 그래핀 옥사이드, 제올라이트 등 다양한 나노소재를 활용해 CO₂/CH₄, CO₂/N₂ 분리에 최적화된 혼합막 및 나노막을 개발하고 있으며, 특히 기체분리에서 높은 투과성과 선택성을 동시에 확보하는 데 초점을 맞추고 있습니다. 또한, 생체가스 및 산업 폐기가스에서의 메탄 회수, 탄소 포집, 유기용매 회수 등 실용적 응용을 겨냥한 소재 설계와 막 공정 최적화도 함께 진행하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Well matched: Submicrometer-sized metal–organic framework (MOF) crystals (ZIF-90) were synthesized by a nonsolvent-induced crystallization technique and incorporated in mixed-matrix gas-separation membranes. ZIF-90/6FDA-DAM membranes (empty pink circle; beyond the upper bound for polymer membranes) show unprecedented high performance for CO2/CH4 separation by a MOF-based membrane. The key is the combination of the highly selective MOF and a highly permeable polymer.
MXenes are emerging rapidly as a new family of multifunctional nanomaterials with prospective applications rivaling that of graphenes. Herein, a timely account of the design and performance evaluation of MXene-based membranes is provided. First, the preparation and physicochemical characteristics of MXenes are outlined, with a focus on exfoliation, dispersion stability, and processability, which are crucial factors for membrane fabrication. Then, different formats of MXene-based membranes in the
A series of zeolite adsorbents has been evaluated for potential application in post-combustion CO2 capture using a new high-throughput gas adsorption instrument capable of measuring 28 samples in parallel. Among the zeolites tested, Ca-A exhibits the highest CO2 uptake (3.72 mmol g−1 and 5.63 mmol cm−3) together with an excellent CO2 selectivity over N2 under conditions relevant to capture from the dry flue gas stream of a coal-fired power plant. The large initial isosteric heat of adsorption of
Biogas is an increasingly attractive renewable resource, envisioned to secure future energy demands and help curb global climate change. To capitalize on this resource, membrane processes and state-of-the-art membranes must efficiently recover methane (CH<sub>4</sub>) from biogas by separating carbon dioxide (CO<sub>2</sub>). Composite (a.k.a. mixed-matrix) membranes, prepared from common polymers and rationally selected/engineered fillers, are highly promising for this application. This review
Membranes for organic solvent nanofiltration (OSN) or solvent-resistant nanofiltration (SRNF) offer unprecedented opportunities for highly efficient and cost-competitive solvent recovery in the pharmaceutical industry. Here, we describe small-flake graphene oxide (SFGO) membranes for high-performance OSN applications. Our strategy exploits lateral dimension control to engineer shorter and less tortuous transport pathways for solvent molecules. By using La<sup>3+</sup> as a cross-linker and space
Nanocrystals of M2(dobdc) (M = Mg, Ni, Zn; dobdc4− = 1,4-dioxido-2,5-benzenedicarboxylate), also known as M-MOF-74 or CPO-27-M, with diameters of ∼100 nm or less were synthesized using a room-temperature reaction of 2 h duration. Adsorption data collected for CO2 and N2 show slightly lower surface areas but similar adsorption selectivites relative to the bulk materials. High-quality mixed-matrix membranes containing Mg2(dobdc) nanocrystals were fabricated using three different polymers for testi
Abstract Owing to the increasing need to mitigate excessive organic solvent waste, the efficient separation and recovery of organic solvents have received major research attention in recent years. The membrane‐based organic solvent nanofiltration (OSN) process has demonstrated its feasibility in addressing this problem with low energy costs, compared to conventional separation techniques, such as adsorption, liquid–liquid extraction, and solvent evaporation. Recently, membranes made of 2D graphe
Two-dimensional (2-D) CuBDC nanosheets (ns-CuBDC) with high-aspect-ratios were deliberately paired with polymers possessing high free volumes to fabricate high performance gas separation membranes. Owing to the molecular sieving effect of the filler, a small ns-CuBDC loading (2-4 wt%) could significantly improve the CO<sub>2</sub>/CH<sub>4</sub> selectivities of membranes, resulting in performances that surpass the upper bound limit for polymer membranes.
Separation membranes with high performance can potentially be made by incorporating zeolites (or other nanoporous molecular sieves) in polymeric materials. However, the fabrication of technologically viable membranes has been hampered by poor adhesion between the inorganic crystals and the polymer and by inadequate dispersion of the inorganic particles. We report a facile, high-yield, and inexpensive solvothermal deposition process to prepare roughened inorganic Mg(OH)(2) nanostructures on zeoli
Der Schlüssel für die ungewöhnlich hohe Leistung der auf Metall-organischen Gerüsten (MOFs) beruhenden ZIF-90/6FDA-DAM Membran (leerer rosafarbener Kreis im Diagramm, jenseits der oberen Grenze für Polymermembranen) bei der CO2/CH4-Trennung ist die Kombination eines hoch selektiven MOF in Form submikrometergroßer Kristalle mit einem hoch durchlässigen Polymer als Gastrennungsmembran. Die ZIF-90-Kristalle wurden durch eine nicht durch das Lösungsmittel induzierte Kristallisation erhalten. Detaile