增强二氧化碳捕获的级联反应:同时优化孔隙率和 N 掺杂

IF 5.1 Q1 POLYMER SCIENCE
Hao Li, Jia Bin Niu, Long Gang Tao, Mei Chee Tan, Hong Yee Low
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引用次数: 0

摘要

碳捕集已成为应对全球变暖挑战的关键脱碳技术。尽管多孔碳在二氧化碳捕集方面具有成本效益且易于再生,但由于吸附位点不足,其捕集能力通常有限。这里介绍的掺氮多孔碳(NPC)克服了通过级联反应制造 NPC 时普遍存在的比表面积和掺氮含量之间的权衡问题。优化后的 NPC 具有从超微孔到大孔的分层孔隙率,二氧化碳捕集能力高达 4.46 mmol g-1,在已报道的 NPC 中名列前 10%。这种能力比用传统方法制造的 NPC 高出 58%,比对照多孔碳高出 106%。朗缪尔吸附建模和数学相关分析表明,容量的提高归功于超微孔体积和氮种含量的显著改善。此外,这种经过优化的 NPC 还表现出卓越的稳定性,在模拟烟气条件下经过 110 次吸附-解吸循环后仍能保持其吸附性能。这项研究不仅凸显了模板化和氮掺杂在 NPC 制备过程中的整合,还提供了优化碳材料孔隙率和氮功能的有效策略,超越了传统方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cascade Reactions for Enhanced CO2 Capture: Concurrent Optimization of Porosity and N-Doping

Cascade Reactions for Enhanced CO2 Capture: Concurrent Optimization of Porosity and N-Doping
Carbon capture emerges as a pivotal decarbonization technology for addressing global warming challenges. Porous carbons, despite their cost-effectiveness and ease of regeneration for CO2 capture, typically exhibit limited capacity owing to insufficient adsorption sites. Here, nitrogen-doped porous carbons (NPCs) are introduced that overcome the prevalent trade-offs between specific surface area and N-doped content in NPCs fabrication through cascade reactions. The optimized NPC, which features hierarchical porosity ranging from ultra-micropores to macropores, shows a superior CO2 capture capacity of 4.46 mmol g−1, ranking in the top 10% of the reported NPCs. This capacity exceeds that of the NPC fabricated with the conventional method by 58% and surpasses the control porous carbon by 106%. Langmuir adsorption modeling and mathematic correlation analysis revealed that this enhanced capacity is attributed to significantly improved ultra-micropores volume and nitrogen-species content. Moreover, this optimized NPC demonstrates exceptional stability, preserving its adsorption performance over 110 adsorption–desorption cycles under simulated flue gas conditions. This research not only highlights the integration of templating and N-doping within NPCs fabrication but also offers an effective strategy to optimize porosity and nitrogen functionality in carbon materials, advancing beyond conventional methodologies.
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来源期刊
CiteScore
10.40
自引率
3.40%
发文量
209
审稿时长
1 months
期刊介绍: ACS Macro Letters publishes research in all areas of contemporary soft matter science in which macromolecules play a key role, including nanotechnology, self-assembly, supramolecular chemistry, biomaterials, energy generation and storage, and renewable/sustainable materials. Submissions to ACS Macro Letters should justify clearly the rapid disclosure of the key elements of the study. The scope of the journal includes high-impact research of broad interest in all areas of polymer science and engineering, including cross-disciplinary research that interfaces with polymer science. With the launch of ACS Macro Letters, all Communications that were formerly published in Macromolecules and Biomacromolecules will be published as Letters in ACS Macro Letters.
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