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通过催化微波处理从塑料废物中选择高附加值的氢气和竹状碳纳米管。

Product Selection Toward High-Value Hydrogen and Bamboo-Shaped Carbon Nanotubes from Plastic Waste by Catalytic Microwave Processing.

机构信息

School of Environment, Tsinghua University, Beijing, 100084, China.

Collaborative Innovation Center for Regional Environmental Quality, Tsinghua University, Beijing, 100084, China.

出版信息

Environ Sci Technol. 2024 Aug 20;58(33):14675-14686. doi: 10.1021/acs.est.4c03471. Epub 2024 Aug 5.

Abstract

The escalating levels of plastic waste and energy crises underscore the urgent need for effective waste-to-energy strategies. This study focused on converting polypropylene wastes into high-value products employing various iron-based catalysts and microwave radiative thermal processing. The Al-Fe catalysts exhibited exceptional performance, achieving a hydrogen utilization efficiency of 97.65% and a yield of 44.07 mmol/g PP. The gas yields increased from 19.99 to 94.21 wt % compared to noncatalytic experiments. Furthermore, this catalytic system produced high-value bamboo-shaped carbon nanotubes that were absent in other catalysts. The mechanism analysis on catalytic properties and product yields highlighted the significance of oxygen vacancies in selecting high-value products through two adsorption pathways. Moreover, the investigation examined the variations in product distribution mechanisms between conventional and microwave pyrolysis, in which microwave conditions resulted in 4 times higher hydrogen yields. The technoeconomic assessment and Monte Carlo risk analysis further compared the disparity. The microwave technique had a remarkable internal rate of return (IRR) of 39%, leading to an income of $577/t of plastic with a short payback period of 2.5 years. This research offered sustainable solutions for the plastic crisis, validating the potential applicability of commercializing the research outcomes in real-world scenarios.

摘要

塑料废物不断升级和能源危机突显了有效实施废物转化为能源策略的紧迫性。本研究集中于利用各种铁基催化剂和微波辐射热加工将聚丙烯废物转化为高价值产品。Al-Fe 催化剂表现出卓越的性能,实现了 97.65%的氢气利用率和 44.07mmol/gPP 的产率。与非催化实验相比,气体产率从 19.99 增加到 94.21wt%。此外,该催化体系产生了高价值的竹状碳纳米管,而其他催化剂中则不存在这种碳纳米管。对催化性能和产物产率的机理分析强调了氧空位在通过两种吸附途径选择高价值产物方面的重要性。此外,研究还考察了传统热解和微波热解之间产物分布机制的变化,其中微波条件导致氢气产率提高了 4 倍。技术经济评估和蒙特卡罗风险分析进一步比较了差异。微波技术具有 39%的显著内部收益率(IRR),导致塑料每吨收入为 577 美元,投资回收期为 2.5 年。这项研究为塑料危机提供了可持续的解决方案,验证了将研究成果在实际场景中商业化的潜在适用性。

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