Halliday Cameron, Ozbek Nil, Hatton T Alan
Department of Chemical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, Massachusetts 02139, United States.
ACS Appl Mater Interfaces. 2020 Nov 18;12(46):51468-51477. doi: 10.1021/acsami.0c14633. Epub 2020 Nov 10.
Molten alkali metal borates have been proposed as energy-efficient sorbents for the low-cost capture of CO at high temperatures. The molten sorbents could help to mitigate global warming by capturing CO from industrial sources and preventing the release of CO into the atmosphere. However, these novel materials operate under harsh conditions, introducing challenges of which material compatibility is one of the most important. Other than platinum, where a less than 0.1% change in performance was observed over 1000 h of continuous use, few materials were found to be compatible with the molten salts. Common ceramics, steels, and superalloys were eliminated from consideration due to corrosive oxidation of the substrate and contamination of the melt resulting in chemical degradation and reduction in the sorbent's working capacity. A high-purity nickel alloy, Nickel 200/201, with a protective oxide layer was found to perform optimally with regards to both corrosive degradation and chemical degradation. Modest corrosion rates on the order of 0.3-0.5 mm/year were estimated, and the sorbent capacity was found to drop by between a manageable 0.5 and 20% over 100 h. Various protective measures are proposed, and future work suggested, to ensure that material compatibility does not limit the potential of molten alkali metal borates to reduce CO emissions and contribute to a clean energy future.
熔融碱金属硼酸盐已被提议作为一种节能吸附剂,用于在高温下低成本捕集一氧化碳。这种熔融吸附剂可以通过从工业源捕获一氧化碳并防止其释放到大气中,来帮助缓解全球变暖。然而,这些新型材料在苛刻条件下运行,带来了诸多挑战,其中材料兼容性是最重要的挑战之一。除了铂,在连续使用1000小时后性能变化小于0.1%,很少有材料被发现与熔盐兼容。常见的陶瓷、钢材和超级合金因基材的腐蚀氧化以及熔体的污染,导致化学降解和吸附剂工作能力下降,而被排除考虑。一种具有保护性氧化层的高纯度镍合金Nickel 200/201,在腐蚀降解和化学降解方面表现最佳。估计腐蚀速率适中,约为0.3 - 0.5毫米/年,并且发现吸附剂容量在100小时内下降了可控的0.5%至20%。提出了各种保护措施,并对未来工作提出了建议,以确保材料兼容性不会限制熔融碱金属硼酸盐减少一氧化碳排放以及为清洁能源未来做出贡献的潜力。