Hanyang University · Engineering
이 교수의 연구실은 폐기물 자원의 지속가능한 재이용을 핵심 목표로 하며, 식품 폐기물, 세균성 슬러지, 생물매탄 등에서 유용한 생체소재를 생산하는 바이오리파이닝 기반 기술을 개발하고 있습니다. 특히, 폐기물에서 폴리하이드록시알카노산(PHA)과 생체디젤 연료를 생산하는 기술적 접근과 함께, 생분허브의 환경적 영향을 최소화하면서도 농업 및 환경 복원에 기여할 수 있는 기술을 연구하고 있습니다. 또한, 생분허브의 오염물질 잔류 및 생물학적 가용성에 대한 장기적 영향 분석도 함께 수행하고 있습니다.
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The tremendous amount of food waste from diverse sources is an environmental burden if disposed of inappropriately. Thus, implementation of a biorefinery platform for food waste is an ideal option to pursue (e.g., production of value-added products while reducing the volume of waste). The adoption of such a process is expected to reduce the production cost of biodegradable plastics (e.g., compared to conventional routes of production using overpriced pure substrates (e.g., glucose)). This review
Abstract Residual pollutants including polycyclic aromatic hydrocarbons ( PAH s), volatile organic compounds ( VOC s), and carbon (aceous) nanoparticles are inevitably generated during the pyrolysis of waste biomass and remain on the solid coproduct called biochar. Such pollutants could have adverse effects on the plant growth as well as microbial community in soil. Although biochar has been proposed as a ‘carbon negative strategy’ to mitigate the greenhouse gas emissions, the impacts of its app
Biochar is a versatile and sustainable tool for agricultural and environmental remediation due to its unique physicochemical properties in terms of soil fertility, nutrient retention, and water holding capacity. As a stable carbon-rich material, biochar promotes plant growth and increases crop yields by enhancing microbial activity. It can also be used as a sorbent for removing pollutants such as heavy metals, organic contaminants, and nutrients from soil and water systems. However, the utility
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