Expanding the Boundary of Biorefinery: Organonitrogen Chemicals from Biomass

被引:229
作者
Chen, Xi [1 ,2 ]
Song, Song [2 ,3 ]
Li, Haoyue [2 ,4 ]
Gozaydin, Gokalp [2 ]
Yan, Ning [2 ]
机构
[1] Shanghai Jiao Tong Univ, China UK Low Carbon Coll, Shanghai 201306, Peoples R China
[2] Natl Univ Singapore, Dept Chem & Biomol Engn, Singapore 117585, Singapore
[3] Tianjin Univ, Collaborat Innovat Ctr Chem Sci & Engn Tianjin, Sch Chem Engn & Technol, Tianjin Key Lab Appl Catalysis Sci & Technol, Tianjin 300072, Peoples R China
[4] Tianjin Univ, Joint Sch Natl Univ Singapore & Tianjin Univ, Int Campus, Fuzhou 350207, Peoples R China
基金
中国国家自然科学基金;
关键词
CATALYTIC TRANSFORMATION; REDUCTIVE AMINATION; AMINO-ACID; LIGNIN; CHITIN; CONVERSION; WASTE; DEPOLYMERIZATION; LIGNOCELLULOSE; NANOPARTICLES;
D O I
10.1021/acs.accounts.0c00842
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Organonitrogen chemicals are essential in many aspects of modern life. Over 80% of the top 200 prescribed pharmaceutical products contain at least one nitrogen atom in the molecule, while all top 10 agrochemicals contain nitrogen, just to name a few. At present, the prevailing industrial processes for manufacturing organonitrogen chemicals start from nonrenewable fossil resources, but eventually we have to make these chemicals in a more sustainable manner. Biomass represents the largest renewable carbon resource on earth, which is inexpensive and widely available. Integrating biomass into the organonitrogen chemical supply chain will mitigate the carbon footprint, diversify the product stream, and enhance the economic competitiveness of biorefinery. Short-cut synthesis routes can be created for oxygen-containing organonitrogen compounds by exploiting the inherent oxygen functionalities in the biomass resources. Moreover, for nitrogen-containing biomass components such as chitin, a unique opportunity to make organonitrogen chemicals bypassing the energy-intensive Haber-Bosch ammonia synthesis process arises. Estimated at 100 billion tons of annual production in the world, chitin captures more nitrogen than the Haber-Bosch process in the form of amide functional groups in its polymer side chain. In this Account, we intend to summarize our efforts to establish new reaction routes to synthesize valuable organonitrogen chemicals from renewable resources. Enabled by tailor-designed catalytic systems, diverse nitrogen-containing products including amines, amino acids, nitriles, and N-heterocycles have been obtained from a range of biomass feedstock either directly or via intermediate platform compounds. Two strategies to produce organonitrogen chemicals are presented. For platform chemicals derived from cellulose, hemicellulose, lignin, and lipids, which are enriched with oxygen functionalities, in particular, hydroxyl groups, the key chemistry to be developed is the catalytic transformation of hydroxyl groups into nitrogen-containing groups using NH3 as the nitrogen source. Along this line, Ru- and Ni-based heterogeneous catalysts are developed to convert alcohols to amines and/or nitriles via a thermal catalytic pathway, while CdS nanomaterials are explored to promote -OH to -NH2 conversion under visiblelight irradiation. Metal-zeolite multifunctional systems are further established to enable the synthesis of N-heterocycles from O-heterocycles. The second strategy involves the use of chitin and chitin derivatives as the starting materials. Under the concept of shell biorefinery, distinctive protocols have been established to chemically transform chitin as the sole feedstock to amino sugars, amino alcohols, furanic amides, and N-heterocycles. By combining mechanochemistry with biotransformation, an integrated process to convert shrimp shell waste to complex, high-value, chiral compounds including tyrosine and (L)-DOPA is also demonstrated.
引用
收藏
页码:1711 / 1722
页数:12
相关论文
共 56 条
  • [1] Amination of β-hydroxyl acid esters via cooperative catalysis enables access to bio-based β-amino acid esters
    Afanasenko, Anastasiia
    Yan, Tao
    Barta, Katalin
    [J]. COMMUNICATIONS CHEMISTRY, 2019, 2 (1)
  • [2] Synergistic Effect of High-Frequency Ultrasound with Cupric Oxide Catalyst Resulting in a Selectivity Switch in Glucose Oxidation under Argon
    Arnaniampong, Prince N.
    Quang Thang Trinh
    Vigier, Karine De Oliveira
    Duy Quang Dao
    Ngoc Han Tran
    Wang, Yingqiao
    Sherburne, Matthew P.
    Jerome, Francois
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2019, 141 (37) : 14772 - 14779
  • [3] Conversion of chitin derived N-acetyl-D-glucosamine (NAG) into polyols over transition metal catalysts and hydrogen in water
    Bobbink, Felix D.
    Zhang, Jiaguang
    Pierson, Yann
    Chen, Xi
    Yan, Ning
    [J]. GREEN CHEMISTRY, 2015, 17 (02) : 1024 - 1031
  • [4] Production of renewable jet fuel range alkanes and commodity chemicals from integrated catalytic processing of biomass
    Bond, Jesse Q.
    Upadhye, Aniruddha A.
    Olcay, Hakan
    Tompsett, Geoffrey A.
    Jae, Jungho
    Xing, Rong
    Alonso, David Martin
    Wang, Dong
    Zhang, Taiying
    Kumar, Rajeev
    Foster, Andrew
    Sen, S. Murat
    Maravelias, Christos T.
    Malina, Robert
    Barrett, Steven R. H.
    Lobo, Raul
    Wyman, Charles E.
    Dumesic, James A.
    Huber, George W.
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2014, 7 (04) : 1500 - 1523
  • [5] One-Step Synthesis of N-Heterocyclic Compounds from Carbohydrates over Tungsten-Based Catalysts
    Chen, Xi
    Yang, Huiying
    Hulsey, Max J.
    Yan, Ning
    [J]. ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2017, 5 (11): : 11096 - 11104
  • [6] Chen X, 2017, GREEN CHEM, V19, P2783, DOI [10.1039/c7gc00089h, 10.1039/C7GC00089H]
  • [7] Shell Biorefinery: Dream or Reality?
    Chen, Xi
    Yang, Huiying
    Yan, Ning
    [J]. CHEMISTRY-A EUROPEAN JOURNAL, 2016, 22 (38) : 13402 - 13421
  • [8] Effect of Treatment Methods on Chitin Structure and Its Transformation into Nitrogen-Containing Chemicals
    Chen, Xi
    Gao, Yongjun
    Wang, Lan
    Chen, Hongzhang
    Yan, Ning
    [J]. CHEMPLUSCHEM, 2015, 80 (10): : 1565 - 1572
  • [9] Direct conversion of chitin into a N-containing furan derivative
    Chen, Xi
    Chew, Shu Ling
    Kerton, Francesca M.
    Yan, Ning
    [J]. GREEN CHEMISTRY, 2014, 16 (04) : 2204 - 2212
  • [10] Aerobic acetone-butanol-isopropanol (ABI) fermentation through a co-culture of Clostridium beijerinckii G117 and recombinant Bacillus subtilis 1A1
    Cui, Yonghao
    He, Jianzhong
    Yang, Kun-Lin
    Zhou, Kang
    [J]. METABOLIC ENGINEERING COMMUNICATIONS, 2020, 11