옥용식 교수
Yong Sik Ok
고려대학교 환경생태공학부 · 환경과학
연구실 소개
옥용식 교수의 연구실은 토양 오염 정화와 지속 가능한 자원 재활용을 핵심 목표로 삼고 있으며, 특히 생분허브(biochar)를 활용한 중금속 및 유해물질의 고정화 기술 개발에 주력하고 있습니다. 다양한 첨가제와 생분허브의 조합을 통해 오염 토양의 환경적 안정성을 높이고, 기계학습을 활용한 예측 모델링을 통해 최적의 정화 조건을 도출하고자 합니다. 또한 수압분쇄용 폐수 처리 및 미세플라스틱과의 오염물질 복합 오염 문제에 대해서도 연구를 확장하고 있습니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15Soil contamination by potentially toxic elements (PTEs) has led to adverse environmental impacts. In this review, we discussed remediation of PTEs contaminated soils through immobilization techniques using different soil amendments with respect to type of element, soil, and amendment, immobilization efficiency, underlying mechanisms, and field applicability. Soil amendments such as manure, compost, biochar, clay minerals, phosphate compounds, coal fly ash, and liming materials are widely used as
Microplastics are well known for vector transport of hydrophobic organic contaminants, and there are growing concerns regarding their potential adverse effects on ecosystems and human health. However, recent studies focussing on hydrophilic compounds, such as pharmaceuticals and personal care products (PPCPs), have shown that the compounds ability to be adsorbed onto plastic surfaces. The extensive use of PPCPs has led to their ubiquitous presence in the environment resulting in their cooccurren
Biochar application is a promising strategy for the remediation of contaminated soil, while ensuring sustainable waste management. Biochar remediation of heavy metal (HM)-contaminated soil primarily depends on the properties of the soil, biochar, and HM. The optimum conditions for HM immobilization in biochar-amended soils are site-specific and vary among studies. Therefore, a generalized approach to predict HM immobilization efficiency in biochar-amended soils is required. This study employs ma
This paper evaluates a novel sorbent for the removal of potentially toxic elements, inherent cations, and hetero-chloride from hydraulic fracturing wastewater (FWW). A series of iron-biochar (Fe-BC) composites with different Fe/BC impregnation mass ratios (0.5:1, 1:1, and 2:1) were prepared by mixing forestry wood waste-derived BC powder with an aqueous FeCl<sub>3</sub> solution and subsequently pyrolyzing them at 1000 °C in a N<sub>2</sub>-purged tubular furnace. The porosity, surface morpholog
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