Preparation of nitrogen-doped activated carbon from bio-oil residue for efficient CO2 adsorption

被引:12
作者
Li, Wen-tao [1 ,2 ]
Huang, Ting [1 ]
Huang, Wan-zhao [1 ]
Gao, Li-juan [2 ]
Li, Kai [1 ]
Niu, Qi [1 ]
Li, Ji-hong [1 ]
Lu, Qiang [1 ]
机构
[1] North China Elect Power Univ, Natl Engn Res Ctr New Energy Power Generat, Beijing 102206, Peoples R China
[2] PowerChina Northwest Engn Corp Ltd, Xian 710065, Peoples R China
关键词
Bio-oil residue; Nitrogen doping; Activated carbon; CO; 2; adsorption; Urea; MICROPOROUS CARBONS; POROUS CARBONS; UREA; PERFORMANCE; BIOCHAR; CAPTURE; SELECTIVITY; H-2;
D O I
10.1016/j.indcrop.2024.118097
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
An efficient strategy for the resourcezation of waste bio-oil residue was developed to fabricate nitrogen -doped activated carbon (NAC) as CO2 adsorbent. The NAC was produced by in -situ nitrogen -doped carbonization and K(2)CO(3 )activation, using urea as nitrogen source. The effects of activation temperature, mass ratios of urea to bio-oil residue (U/O ratio) and K(2)CO(3 )to char (K/C ratio) on the physicochemical properties and CO2 adsorption performance of NAC were investigated. Under the conditions of activation temperature of 750 C, U/O ratio of 1 and K/C ratio of 3, the as -prepared NAC exhibited the greatest CO2 adsorption performance with an excellent CO2 adsorption capacity of 6.22 mmol/g at 1 bar and 0 C, which was much higher than that without nitrogen doping (2.21 mmol/g). In addition, the CO2/N-2 selectivity of NAC was 14.3 and the adsorption capacity loss was below 1% after 5 consecutive cycles, revealing promising potentials in carbon capture applications.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Controlled preparation of nitrogen-doped hierarchical carbon cryogels derived from Phenolic-Based resin and their CO2 adsorption properties
    Zhou, Yalan
    Luo, Lu
    Yan, Wen
    Li, Zeliang
    Fan, Mizi
    Du, Guanben
    Zhao, Weigang
    ENERGY, 2022, 246
  • [32] Preparation and Characterization of Nitrogen-Containing Cellular Activated Carbon for CO2 and H2 Adsorption
    Zhao, Weigang
    Luo, Lu
    Fan, Mizi
    NANO, 2017, 12 (01)
  • [33] Nitrogen doped activated carbon derived from chitosan/hexamethylenetetramine: structural and CO2 adsorption properties
    K. Malini
    D. Selvakumar
    N. S. Kumar
    Journal of Porous Materials, 2022, 29 : 1539 - 1550
  • [34] CO2 adsorption performance of nitrogen-doped activated carbon from banana pseudo-stem by urea-assisted high-pressure CO2-Hydrothermal treatment
    Zhang, Huangru
    Jiang, Fenghao
    Zhang, Xusheng
    Hu, Shunxuan
    Li, Junguo
    Zhang, Haofan
    Liu, Ke
    SEPARATION AND PURIFICATION TECHNOLOGY, 2025, 366
  • [35] Enhanced CO2 Adsorption on Nitrogen-Doped Carbon Materials by Salt and Base Co-Activation Method
    Wei, Ruiping
    Dai, Xingchao
    Shi, Feng
    MATERIALS, 2019, 12 (08)
  • [36] In Situ Dry Chemical Synthesis of Nitrogen-Doped Activated Carbon from Bamboo Charcoal for Carbon Dioxide Adsorption
    Ying, Weijun
    Tian, Shuo
    Liu, Huan
    Zhou, Zenan
    Kapeso, Grantson
    Zhong, Jinhuan
    Zhang, Wenbiao
    MATERIALS, 2022, 15 (03)
  • [37] Hierarchical porous nitrogen-doped carbon materials derived from one-step carbonization of polyimide for efficient CO2 adsorption and separation
    Liu, Yurong
    Chen, Yaqin
    Tian, Liangliang
    Hu, Rong
    JOURNAL OF POROUS MATERIALS, 2017, 24 (03) : 583 - 589
  • [38] Surface chemical modulation of nitrogen-doped microporous carbon for efficient removal of H2S and CO2: The effect of nitrogen functionality
    Ma, Yongping
    Xu, Yan
    Liu, Fan
    Zhang, Yankai
    Wang, Jitong
    MICROPOROUS AND MESOPOROUS MATERIALS, 2025, 387
  • [39] Activated carbon derived from chitin aerogels: preparation and CO2 adsorption
    Rohan S. Dassanayake
    Chamila Gunathilake
    Noureddine Abidi
    Mietek Jaroniec
    Cellulose, 2018, 25 : 1911 - 1920
  • [40] Review on Nitrogen-Doped Porous Carbon Materials for CO2 Adsorption and Separation: Recent Advances and Outlook
    Li, Tongxin
    An, Xuefei
    Fu, Dong
    ENERGY & FUELS, 2023, 37 (12) : 8160 - 8179