The novel technique of biochar production from food waste (FW) through pyrolysis is a proactive step towards materialising the circular economy. This review provide a detail insights on the successful utilisation of FW for biochar production and its subsequent environmental applications, along with efficiencies and mechanisms in the removal of various pollutants from wastewater. The chemical transformation during FW pyrolysis assists the resultant biochar with unique physiochemical characteristics, including structure formation, porosity, alkalinity, functional groups, polarity, cation exchange capacity and carbon structure that contribute to the efficient removal of pollutants. Based on the organic-rich nature, detailed discussions have been made on how FW could be an ideal feedstock for pyrolysis as compared to other bio-waste. Moreover, the impacts of pyrolysis temperatures on the characteristics, variations in the removal efficiencies and interactions of biochar with pollutants have been discussed. The suitability of FW biochar for environmental applications is its stability for subsequent usage without losing activity and production of secondary pollutants or by-products, as compared to other technologies. However, despite the promising benefits, FW to biochar technology is still in infancy and prone to several challenges, including scalability due to intrinsic heterogeneity, high moisture that sometimes requires an additional step of drying and grinding and variations in the physicochemical characteristics that impact the economic feasibility, scalability and end-use marketability. Hence, detailed studies on techno-economic analysis in integration with advances in FW to biochar production, applications as adsorbent, stability, and reusability after treatment to fully explore the comparison with other available similar materials.
M. Waqas, A. Nizami, O. A. Arıkan et al.· Environmental Research· 0 citations
Ahead of COP31, the Turkish Academy of Sciences (TÜBA) prepared this synthesis report, which brings together the collective expertise of 16 scientists from TÜBA Working Groups. Comprising seven chapters, the report charts a science-based path from electrification and zero waste to climate-resilient cities and green industrialisation. It explores how education, technology and artificial intelligence can accelerate climate resilience worldwide. Based on rigorous research, the report provides specific policy recommendations for the COP31 Action Agenda. The report reflects TÜBA's commitment to evidence-based climate science and international cooperation. Designed for scientists, policymakers and diplomats, the report calls for a global consensus based on shared responsibility. As Türkiye prepares to host COP31 in Antalya, this report serves as a scientific guide for climate action. It affirms that, as with lasting peace, lasting sustainability depends on unity across nations and disciplines.
Muzaffer Şeker, H. Hasar, I. Koyuncu et al.· 0 citations