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Oxygen vacancy defects engineering on Cu-doped Co_(3)O_(4) for promoting effective COS hydrolysis
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作者 Guanyu Mu Yan Zeng +5 位作者 Yong Zheng Yanning Cao fujian liu Shijing Liang Yingying Zhan Lilong Jiang 《Green Energy & Environment》 SCIE EI CAS CSCD 2023年第3期831-841,共11页
The activation of H_(2)O is a key step of the COS hydrolysis,which may be tuned by oxygen vacancy defects in the catalysts.Herein,we have introduced Cu into Co_(3)O_(4) to regulate the oxygen vacancy defect content of... The activation of H_(2)O is a key step of the COS hydrolysis,which may be tuned by oxygen vacancy defects in the catalysts.Herein,we have introduced Cu into Co_(3)O_(4) to regulate the oxygen vacancy defect content of the catalysts.In situ DRIFTS and XPS spectra reveal that COS and H_(2)O are adsorbed and activated by oxygen vacancy.The 10 at%Cu doped Co_(3)O_(4) sample(10Cu-Co_(3)O_(4))exhibits the optimal activity,100%of COS conversion at 70℃.The improved oxygen vacancies of CueCo_(3)O_(4) accelerate the activation of H_(2)O to form active -OH.COS binds with hydroxyl to form the intermediate HSCO^(-)_(2),and then the activated-OH on the oxygen vacancy reacts with HSCO^(-)_(2) to form HCO^(-)_(3).Meanwhile,the catalyst exhibits high catalytic stability because copper species(Cu+/Cu^(2+))redox cycle mitigate the sulfation of Co_(3)O_(4)(Co^(2+)/Co^(3+)).Our work offers a promising approach for the rational design of cobalt-related catalysts in the highly efficient hydrolysis COS process. 展开更多
关键词 Oxygen vacancy COS hydrolysis In situ spectra Cu doped Co_(3)O_(4)
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Triggering in-plane defect cluster on MoS_(2) for accelerated dinitrogen electroreduction to ammonia 被引量:3
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作者 Wanru Liao Ke Xie +5 位作者 Lijuan liu Xiuyun Wang Yu Luo Shijing Liang fujian liu Lilong Jiang 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2021年第11期359-366,I0008,共9页
Electrochemical nitrogen reduction reaction (eNRR) is an alternative promising manner for sustainable N2 fixation with low-emission. The major challenge for developing an efficient electrocatalyst is the cleaving of t... Electrochemical nitrogen reduction reaction (eNRR) is an alternative promising manner for sustainable N2 fixation with low-emission. The major challenge for developing an efficient electrocatalyst is the cleaving of the stable Ntriple bondN triple bonds. Herein, we design a new MoS_(2) with in-plane defect cluster through a bottom-up approach for the first time, where the defect cluster is composed of three adjacent S vacancies. The well-defined in-plane defect clusters could contribute to the strong chemical adsorption and activation towards inert nitrogen, achieving an excellent eNRR performance with an ammonia yield rate of 43.4 ± 3 μg h^(−1) mgcat.^(−1) and a Faradaic efficiency of 16.8 ± 2% at −0.3 V (vs. RHE). The performance is much higher than that of MoS_(2) with the edge defect. Isotopic labeling confirms that N atoms of produced NH4+ originate from N2. Furthermore, the in-plane defect clusters realized the alternate hydrogenation of nitrogen in a side-on way to synthesize ammonia. This work provides a prospecting strategy for fine-tuning in-plane defects in a catalyst, and also promotes the progress of eNRR. 展开更多
关键词 In-plane defect clusters Ammonia synthesis MoS_(2) ELECTROCATALYSIS Isotopic labeling
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Efficient catalytic removal of COS and H_(2)S over graphitized 2D micro-meso-macroporous carbons endowed with ample nitrogen sites synthesized via mechanochemical carbonization 被引量:1
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作者 Xun Kan Guanqing Zhang +7 位作者 Yingying Luo fujian liu Yong Zheng Yihong Xiao Yanning Cao Chak-tong Au Shijing Liang Lilong Jiang 《Green Energy & Environment》 SCIE EI CSCD 2022年第5期983-995,共13页
Developing a suitable catalyst for the elimination of highly toxic carbonyl sulfide(COS)and hydrogen sulfide(H_(2)S) is of great significance in terms of industrial safety and environmental protection.We demonstrate h... Developing a suitable catalyst for the elimination of highly toxic carbonyl sulfide(COS)and hydrogen sulfide(H_(2)S) is of great significance in terms of industrial safety and environmental protection.We demonstrate here the facile synthesis of graphitized 2D micro-meso-macroporous carbons by one-step carbonization of a mixture of urea and glucose at 700–900℃.The as-synthesized graphitized catalysts,designated as 2DNHPC-x(x=urea/glucose mass ratio),are endowed with an ultra-high concentration(12.9–20.2 wt%)of stable and versatile nitrogen sites(e.g.pyrrole and pyridine)which are anchored on the surface via stable covalent bonding.As a result,the 2D-NHPC-x are active in catalytic hydrolysis of COS on pyrrolic N to H_(2)S,and the H_(2)S can be subsequently captured on pyridinic N and converted to elemental sulfur at ambient conditions over the same materials.Among the prepared catalysts,2D-NHPC-x can catalytically hydrolysize 91%of COS to H_(2)S at 30℃,whereas the conversion ratio over the common catalysts g-C_(3)N_(4)and Fe_(2)O_(3)are below 6.0%.Furthermore,these catalysts also exhibit H_(2)S conversion and sulfur selectivity of nearly 100%at 180℃with long-time durability,which is higher than those of the most reported carbonbased catalysts.In contrast,the H_(2)S capacities of activated carbon,ordered mesoporous carbons(OMC)and N-doped OMC are 3.9,1.5 and2.39 mmol g^(-1),respectively.Both the experimental and theoretical results are disclosed that 2D-NHPC-x are superior to the nitrogen-doped porous materials ever applied in simultaneous catalytic elimination of both COS and H_(2)S. 展开更多
关键词 CARBONS catalytic endowed
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高炉煤气/转炉煤气低碳高效合成氨工艺流程 被引量:1
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作者 刘福建 郑勇 +1 位作者 曹彦宁 江莉龙 《过程工程学报》 CAS CSCD 北大核心 2023年第3期350-358,共9页
作为钢铁生产大国,我国的钢铁年产量已超过10.3亿吨,位居世界第一位。高炉煤气/转炉煤气是以煤炭为原料的高炉炼铁行业的副产品,其年产量高达1.8万亿立方米,实现对高炉煤气/转炉煤气的清洁高效再利用是国家的重大需求。目前,钢铁企业实... 作为钢铁生产大国,我国的钢铁年产量已超过10.3亿吨,位居世界第一位。高炉煤气/转炉煤气是以煤炭为原料的高炉炼铁行业的副产品,其年产量高达1.8万亿立方米,实现对高炉煤气/转炉煤气的清洁高效再利用是国家的重大需求。目前,钢铁企业实现高炉煤气及转炉煤气的综合利用主要包括:一种是直接给锅炉、热风炉和加热炉等作为燃料使用;另一种是利用高炉煤气的余压发电,再将发电用后的高炉煤气作为燃料供锅炉、热风炉和加热炉等使用。随着我国能源结构及环保要求的不断完善,综合利用高炉煤气/转炉煤气并按照工业合成氨的原料工艺要求进行净化、配比后制取绿氢,并作为原料用于合成氨,不仅能够满足区域经济发展对绿色合成氨产能的需求,还能够实现高炉煤气/转炉煤气资源重整,促进区域经济绿色发展,符合当前国家对合成氨及钢铁行业提出的节能减排的要求。基于此,本综述对高炉煤气/转炉煤气低碳高效合成氨工艺流程及其优势进行系统分析与展望。 展开更多
关键词 合成氨工艺流程 高炉煤气 转炉煤气 低碳高效
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