農産食品産業バイオマス廃棄物を機能性活性炭へアップサイクル:選択的CO2捕集およびスーパーキャパシタ応用
Upcycling Agro-Food Industrial Biomass Waste into Functional Activated Carbon for Selective CO2 Capture and Supercapacitor Applications (原題)
Fahmi Anwar, Anish Mathai Varghese, K. Suresh Kumar Reddy, Nahla Alamoodi, Georgios N. Karanikolos
🤖 gxceed AI 要約
日本語
製粉廃棄物・古トウモロコシ・飼料廃棄物という3種の未活用農産食品廃棄物から、単段KOH活性化法により活性炭を合成した。298K・1barで最大2.55mmol/gのCO2吸着量と高いCO2/N2選択性(48)を示し、電気二重層キャパシタとして250F/gの容量を達成した。前駆体化学と性能の相関を比較し、CO2捕集とエネルギー貯蔵の両用途に資する持続可能な材料基盤を提示する。
English
Activated carbons were synthesized via single-step KOH activation from three underexplored agro-food wastes (flour mill, old corn, feed waste). The materials achieved up to 2.55 mmol/g CO2 uptake at 298 K/1 bar with high CO2/N2 selectivity (48), and up to 250 F/g capacitance as supercapacitors. The study correlates precursor chemistry with performance, offering a scalable, sustainable platform for CO2 capture and energy storage.
Unofficial AI-generated summary based on the public title and abstract. Not an official translation.
📝 gxceed 編集解説 — Why this matters
日本のGX文脈において
CO2回収材料の研究であり、日本企業のCCUS実装やGXリーグ・カーボンニュートラル戦略に直接資するものではないが、廃棄物由来材料による循環型カーボン利用は、産業廃棄物削減と脱炭素を両立する技術オプションとして参考になる。
In the global GX context
This work sits at the materials-science edge of CCUS, contributing to the global portfolio of carbon-capture sorbents. It does not engage disclosure frameworks (TCFD/ISSB/CSRD) but supports the technological feasibility narrative underlying corporate net-zero and circular-economy commitments.
👥 読者別の含意
🔬研究者:前駆体化学と活性化条件がCO2吸着能・電気化学特性に与える影響を体系的に比較した点が参考になる。
🏢実務担当者:食品・農業廃棄物を炭素材料へ転換する循環型サプライチェーンの可能性を検討する材料になり得る。
🏛政策担当者:廃棄物由来CCUS材料の実装可能性を示すが、政策設計への直接的示唆は乏しい。
📄 Abstract(原文)
Abstract Activated carbon (AC) materials were developed via a single-step method from three different biowaste sources and tailored for application in carbon dioxide (CO2) capture and electrochemical energy storage, combining the concept of biowaste valorisation with sustainable environmental and energy applications. This work investigated the use of three underexplored agro-food waste streams as precursors, namely flour mill waste (BW1), old corn waste (BW2), and feed waste (BW3), and performed a systematic comparison of their conversion under the same activation conditions, as well as characteristics and performance. The developed AC materials demonstrated properties such as high graphitization, favorable pore-structure configuration and surface area, and favorable surface characteristics. CO2 adsorption experiments at 298 K showed a capacity of 2.55 mmol/g at 1 bar with stability over multiple cycles for AC2, as well as high CO2/N2 selectivity, reaching 48 at 1 bar (ideal adsorbed solution theory (IAST)) for a 15:85 v/v CO2/N2 mixture for AC1, suggesting a high selective affinity for CO2 capture at ambient conditions. Furthermore, electrochemical experiments revealed stable performance as electric double-layer capacitors as a result of low solution and charge-transfer resistance, demonstrating capacitive performance in the order of 250 F/g at a scan rate of 5 mV/s for AC3, which was tested at different increasing scan rates and determined to retain a capacitance value higher than 90 F/g at a high scan rate of 100 mV/s. Galvanostatic charge−discharge (GCD) investigations revealed virtually symmetric charge−discharge curves with an acceptable rate capability for a symmetric AC3 full cell, retaining ∼70% of initial capacitance despite a 4-fold increase in current density, and preserving ∼78% of initial capacitance after 1000 cycles. These results reveal the potential of agro-industrial waste streams-derived AC materials for selective carbon capture and electrochemical energy storage, enabling them a simple, potentially scalable, and sustainable material platform for such applications. The key contribution is the processing of three previously underutilized agro-food industrial biomass wastes into functional AC materials for energy storage and CO2 capture via a single-step KOH activation approach, allowing for direct comparison and correlation of precursor chemistry. Furthermore, this provides a solid basis for future precursor-specific tuning of KOH loading, activation temperature and time, pore structure, and surface functioning to optimize properties and performance.
🔗 Provenance — このレコードを発見したソース
- openalex https://doi.org/10.1021/acsaenm.6c00530first seen 2026-09-26 04:43:29
- semanticscholar https://doi.org/10.1021/acsaenm.6c00530first seen 2026-09-29 05:23:06
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