无机盐工业
主管:中海油天津化工研究设计院有限公司
主办:中海油天津化工研究设计院有限公司
   中海油炼油化工科学研究院(北京)有限公司
   中国化工学会无机酸碱盐专业委员会
ISSN 1006-4990 CN 12-1069/TQ
催化材料

层状硅酸镍纳米管催化剂的可控制备及其催化性能研究

  • 李通 ,
  • 尹宏峰
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  • 中国科学院宁波材料技术与工程研究所,浙江 宁波 315201
李通(1988— ),男,博士,助理研究员,主要从事加氢催化剂设计与开发工作;E-mail:litong@nimte.ac.cn
尹宏峰,男,博士,研究员;E-mail:yinhf@nimte.ac.cn

收稿日期: 2022-08-23

  网络出版日期: 2023-05-15

基金资助

国家自然科学基金项目(22072171)

Study on controllable preparation of nickel phyllosilicate nanotubes catalysts and their catalytic performance

  • LI Tong ,
  • YIN Hongfeng
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  • Ningbo Institute of Materials Technology and Engineering,Chinese Academy of Sciences,Ningbo 315201,China

Received date: 2022-08-23

  Online published: 2023-05-15

摘要

通过水热法合成了具有管状结构的层状硅酸镍纳米管材料,并考察了水热反应温度、时间、压力和氢氧化钠用量等对材料形貌和结构的影响。结果表明,氢氧化钠用量、水热反应温度、反应时间是影响层状硅酸镍纳米管形成的关键因素,而水热反应压力对层状硅酸镍纳米管材料的形成无明显影响。确定了层状硅酸镍纳米管材料合成的最佳水热反应条件:水热反应温度为200 ℃、水热反应压力为2 MPa、n(Ni)∶n(NaOH)=1∶(54~72)、水热反应时间为12 h。此外,考察了层状硅酸镍纳米管催化剂在二氧化碳甲烷化反应中的催化性能,结果表明层状硅酸镍纳米管催化剂表现出了优异的二氧化碳甲烷化反应催化性能和反应稳定性,经过72 h的反应测试,催化剂性能没有明显降低,也没有出现镍纳米颗粒团聚烧结现象。

本文引用格式

李通 , 尹宏峰 . 层状硅酸镍纳米管催化剂的可控制备及其催化性能研究[J]. 无机盐工业, 2023 , 55(5) : 128 -136 . DOI: 10.19964/j.issn.1006-4990.2022-0501

Abstract

Nickel phyllosilicate nanotubes(Ni-PSNTs) materials with tubular structure were synthesized by hydrothermal method.The effects of hydrothermal reaction temperature,time,pressure,and sodium hydroxide content on the morphology and structure of the materials were investigated.The results showed that the amount of sodium hydroxide,hydrothermal reaction temperature,and reaction time were key factors affecting the formation of Ni-PSNTs,while the hydrothermal reaction pressure had no significant impact on the formation of Ni-PSNTs.The optimal hydrothermal reaction conditions for the synthesis of Ni-PSNTs materials were determined as hydrothermal reaction temperature of 200 ℃,hydrothermal reaction pressure of 2 MPa,n(Ni)∶n(NaOH)=1∶(54~72),and hydrothermal reaction time of 12 h.In addition,the catalytic performance of the Ni-PSNTs catalyst for the methanation of carbon dioxide was investigated.The results showed that the Ni-PSNTs catalyst exhibited excellent catalytic performance and reaction stability for the methanation of carbon dioxide.After 72 h of reaction testing,the catalyst performance did not significantly decrease,nor did nickel nanoparticles agglomerate and sinter.

参考文献

1 WEI Jian, YAO Ruwei, HAN Yu,et al.Towards the development of the emerging process of CO2 heterogenous hydrogenation into high-value unsaturated heavy hydrocarbons[J].Chemical Society Reviews202150(19)∶10764-10805.
2 YU Yisong, ZHANG Xianwei, LIU Jianwu,et al.Natural gas hydrate resources and hydrate technologies:A review and analysis of the associated energy and global warming challenges[J].Energy & Environmental Science202114(11):5611-5668.
3 TEBALDI C, RANASINGHE R, VOUSDOUKAS M,et al.Extreme sea levels at different global warming levels[J].Nature Climate Change202111(9):746-751.
4 胡旭,董灵玉,李文翠,等.光化学法制备过渡金属-氮共掺杂多孔炭基CO2电还原催化剂[J].无机盐工业202153(6):8-13.
  HU Xu, DONG Lingyu, LI Wencui,et al.Preparation of transition metal-nitrogen co-doped porous carbon-based CO2 electro-reduction catalyst through photochemical method[J].Inorganic Chemicals Industry202153(6):8-13.
5 RAHMAN F A, AZIZ M M A, SAIDUR R,et al.Pollution to solution:Capture and sequestration of carbon dioxide(CO2) and its utilization as a renewable energy source for a sustainable future[J].Renewable and Sustainable Energy Reviews201771:112- 126.
6 WANG Fei, HE Shan, CHEN Hao,et al.Active site dependent reaction mechanism over Ru/CeO2 catalyst toward CO2 methanati-on[J].Journal of the American Chemical Society2016138(19):6298-6305.
7 QUINDIMIL A, ONRUBIA-CALVO J A, DAVó-QUI?ONERO A,et al.Intrinsic kinetics of CO2 methanation on low-loaded Ni/Al2O3 catalyst:Mechanism,model discrimination and parameter estimation[J].Journal of CO2 Utilization202257:101888.
8 WU Hungchi, CHEN T C, WU Jiahuang,et al.Influence of sodium-modified Ni/SiO2 catalysts on the tunable selectivity of CO2 hydrogenation:Effect of the CH4 selectivity,reaction pathway and mech-anism on the catalytic reaction[J].Journal of Colloid and Interface Science2021586:514-527.
9 ASHOK J, PATI S, HONGMANOROM P,et al.A review of recent catalyst advances in CO2 methanation processes[J].Catalysis Today2020356:471-489.
10 鲁杰,吴华东,马尚,等.镍系催化剂的制备、表征及其甲烷化性能的研究[J].无机盐工业201951(5):78-81,96.
  LU Jie, WU Huadong, MA Shang,et al.Preparation and characterization of nickel-based catalyst and its methanation performance[J].Inorganic Chemicals Industry201951(5):78-81, 96.
11 TSIOTSIAS A I, CHARISIOU N D, YENTEKAKIS I V,et al.Bimetallic Ni-based catalysts for CO2 methanation:A review[J].Nanomaterials202011(1):28.
12 ABE T, TANIZAWA M, WATANABE K,et al.CO2 methanation property of Ru nanoparticle-loaded TiO2 prepared by a polygonal barrel-sputtering method[J].Energy & Environmental Science20092(3):315-321.
13 GAC W, ZAWADZKI W, ROTKO M,et al.Effects of support composition on the performance of nickel catalysts in CO2 methanation reaction[J].Catalysis Today2020357:468-482.
14 STRUCKS P, FAILING L, KALUZA S.A short review on Ni-catalyzed methanation of CO2:Reaction mechanism,catalyst deactivation,dynamic operation[J].Chemie Ingenieur Technik202193(10):1526-1536.
15 WANG Yongzhao, WU Ruifang, ZHAO Yongxiang.Effect of ZrO2 promoter on structure and catalytic activity of the Ni/SiO2 catalyst for CO methanation in hydrogen-rich gases[J].Catalysis Today2010158(3/4):470-474.
16 YAN Yong, DAI Yihu, YANG Yanhui.Improved stability of Y2O3 supported Ni catalysts for CO2 methanation by precursor-determined metal-support interaction[J].Applied Catalysis B:Environmental2018237:504-512.
17 LIU Qing, TIAN Yuanyu.One-pot synthesis of NiO/SBA-15 mo-nolith catalyst with a three-dimensional framework for CO2 meth-anation[J].International Journal of Hydrogen Energy201742(17):12295-12300.
18 ROMERO-SáEZ M, DONGIL A B, BENITO N,et al.CO2 methanation over nickel-ZrO2 catalyst supported on carbon nanotubes:A comparison between two impregnation strategies[J].Applied Catalysis B:Environmental2018237:817-825.
19 IGLESIAS I, QUINDIMIL A, MARINO F,et al.Journal of Hydrogen Energy201944(3):1710-1719.
20 XU Leilei, LIAN Xinbo, CHEN Mindong,et al.CO2 methanation over CoNi bimetal-doped ordered mesoporous Al2O3 catalysts with enhanced low-temperature activities[J].International Journal of Hydrogen Energy201843(36):17172-17184.
21 YUE Hairong, ZHAO Yujun, ZHAO Shuo,et al.A copper-phyllosilicate core-sheath nanoreactor for carbon-oxygen hydrogenolysis reactions[J].Nature Communications20134:2339.
22 ZHANG Chengxi, ZHU Wancheng, LI Shuirong,et al.Sintering-resistant Ni-based reforming catalysts obtained via the nanoconfinement effect[J].Chemical Communications201349(82):9383-9385.
23 BIAN Zhoufeng, SURYAWINATA I Y, KAWI S.Highly carbon resistant multicore-shell catalyst derived from Ni-Mg phyllosilicate nanotubes@silica for dry reforming of methane[J].Applied Catalysis B:Environmental2016195:1-8.
24 MCDONALD A, SCOTT B, VILLEMURE G.Hydrothermal preparation of nanotubular particles of a 1∶1 nickel phyllosilicate[J].Microporous and Mesoporous Materials2009120(3):263- 266.
25 WANG Hui, ZHAO Wenru, REHMAN M U,et al.Copper phyllosilicate nanotube catalysts for the chemosynthesis of cyclohexane via hydrodeoxygenation of phenol[J].ACS Catalysis202212(8):4724-4736.
26 KORYTKOVA E N, PIVOVAROVA L N, DROZDOVA I A,et al.Synthesis of nanotubular nickel hydrosilicates and nickel-magnesium hydrosilicates under hydrothermal conditions[J].Glass Phy- sics and Chemistry200531(6):797-802.
27 KORYTKOVA E N, MASLOV A V, PIVOVAROVA L N,et al.Synthesis of nanotubular Mg3Si2O5(OH)4-Ni3Si2O5(OH)4 silicat-es at elevated temperatures and pressures[J].Inorganic Materials200541(7):743-749.
28 PERBOST R, AMOURIC M, OLIVES J.Influence of cation size on the curvature of serpentine minerals:HRTEM-AEM study and elastic theory[J].Clays and Clay Minerals200351(4):430- 438.
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