Low-Input Crops as Lignocellulosic Feedstock for Second-Generation Biorefineries and the Potential of Chemometrics in Biomass Quality Control

被引:19
作者
Alzagameem, Abla [1 ,2 ]
Bergs, Michel [1 ]
Do, Xuan Tung [1 ]
Klein, Stephanie Elisabeth [1 ]
Rumpf, Jessica [1 ]
Larkins, Michael [3 ]
Monakhova, Yulia [4 ,5 ,6 ]
Pude, Ralf [7 ]
Schulze, Margit [1 ]
机构
[1] Bonn Rhein Sieg Univ Appl Sci, Dept Nat Sci, von Liebig Str 20, D-53359 Rheinbach, Germany
[2] Brandenburg Univ Technol BTU Cottbus Senftenberg, Fac Environm & Nat Sci, Pl Deutsch Einheit 1, D-03046 Cottbus, Germany
[3] North Carolina State Univ, Dept Forest Biomat, 2820 Faucette Dr Biltmore Hall, Raleigh, NC 27695 USA
[4] Spectral Serv AG, Emil Hoffmann Str 33, D-50996 Cologne, Germany
[5] Saratov NG Chernyshevskii State Univ, Inst Chem, Astrakhanskaya St 83, Saratov 410012, Russia
[6] St Petersburg State Univ, Inst Chem, 13B Univ Skaya Emb, St Petersburg 199034, Russia
[7] Univ Bonn, Fac Agr, Field Lab Campus Klein Altendorf, Campus Klein Altendorf 1, D-53359 Rheinbach, Germany
来源
APPLIED SCIENCES-BASEL | 2019年 / 9卷 / 11期
关键词
chemometrics; lignin; lignocellulosic feedstock; low-input crops; multivariate data analysis; Miscanthus; Paulownia; Silphium; SILPHIUM-PERFOLIATUM L; DILUTE-ACID PRETREATMENT; 15 MISCANTHUS GENOTYPES; BIOETHANOL PRODUCTION; TECHNOECONOMIC ANALYSIS; ENZYMATIC-HYDROLYSIS; TECHNICAL LIGNINS; ENERGY CROP; BIOENERGY; PAULOWNIA;
D O I
10.3390/app9112252
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Featured Application 1. The utilization of so-called low-input crops (i.e., Miscanthus grasses and fast-growing trees) as lignocellulosic feedstock for second generation biorefineries. 2. Lignin and lignin-derived materials as agrochemical products. 3. Chemometric methods to be used for fast and efficient lignocellulose feedstock (LCF) quality control. Abstract Lignocellulose feedstock (LCF) provides a sustainable source of components to produce bioenergy, biofuel, and novel biomaterials. Besides hard and soft wood, so-called low-input plants such as Miscanthus are interesting crops to be investigated as potential feedstock for the second generation biorefinery. The status quo regarding the availability and composition of different plants, including grasses and fast-growing trees (i.e., Miscanthus, Paulownia), is reviewed here. The second focus of this review is the potential of multivariate data processing to be used for biomass analysis and quality control. Experimental data obtained by spectroscopic methods, such as nuclear magnetic resonance (NMR) and Fourier-transform infrared spectroscopy (FTIR), can be processed using computational techniques to characterize the 3D structure and energetic properties of the feedstock building blocks, including complex linkages. Here, we provide a brief summary of recently reported experimental data for structural analysis of LCF biomasses, and give our perspectives on the role of chemometrics in understanding and elucidating on LCF composition and lignin 3D structure.
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页数:27
相关论文
共 147 条
[81]   Progress on Optimizing Miscanthus Biomass Production for the European Bioeconomy: Results of the EU FP7 Project OPTIMISC [J].
Lewandowski, Iris ;
Clifton-Brown, John ;
Trindade, Luisa M. ;
van der Linden, Gerard C. ;
Schwarz, Kai -Uwe ;
Mueller-Saemann, Karl ;
Anisimov, Alexander ;
Chen, C. -L. ;
Doistre, Oene ;
Donnison, Iain S. ;
Farrar, Kerrie ;
Fonteyne, Simon ;
Harding, Graham ;
Hastings, Astley ;
Huxley, Laurie M. ;
Iqbal, Yasir ;
Khokhlov, Nikolay ;
Kiesel, Andreas ;
Lootens, Peter ;
Meyer, Heike ;
Mos, Michal ;
Muylle, Hilde ;
Nunn, Chris ;
Ozguven, Mensure ;
Roldan-Ruiz, Isabel ;
Schule, Heinrich ;
Tarakanov, Ivan ;
van der Weijde, Tim ;
Wagner, Moritz ;
Xi, Qingguo ;
Kalinina, Olena .
FRONTIERS IN PLANT SCIENCE, 2016, 7
[82]   Quantitative visualization of lignocellulose components in transverse sections of moso bamboo based on FTIR macro- and micro-spectroscopy coupled with chemometrics [J].
Li, Xiaoli ;
Wei, Yuzhen ;
Xu, Jie ;
Xu, Ning ;
He, Yong .
BIOTECHNOLOGY FOR BIOFUELS, 2018, 11 :1-16
[83]   The Minor Wall-Networks between Monolignols and Interlinked-Phenolics Predominantly Affect Biomass Enzymatic Digestibility in Miscanthus [J].
Li, Zhengru ;
Zhao, Chunqiao ;
Zha, Yi ;
Wan, Can ;
Si, Shengli ;
Liu, Fei ;
Zhang, Rui ;
Li, Fengcheng ;
Yu, Bin ;
Yi, Zili ;
Xu, Ning ;
Peng, Liangcai ;
Li, Qing .
PLOS ONE, 2014, 9 (08)
[84]  
Lilja K., 2017, WOOD BASED BIOECONOM
[85]  
Littlejohns J, 2018, BIOFUEL RES J, V5, P759, DOI [10.18331/BRJ2018.5.1.4, 10.18331/brj2018.5.1.4]
[86]   Total Utilization of Miscanthus Biomass, Lignin and Carbohydrates, Using Earth Abundant Nickel Catalyst [J].
Luo, Hao ;
Klein, Ian M. ;
Jiang, Yuan ;
Zhu, Hanyu ;
Liu, Baoyuan ;
Kenttaemaa, Hilkka I. ;
Abu-Omar, Mahdi M. .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2016, 4 (04) :2316-2322
[87]   Recent innovations in analytical methods for the qualitative and quantitative assessment of lignin [J].
Lupoi, Jason S. ;
Singh, Seema ;
Parthasarathi, Ramakrishnan ;
Simmons, Blake A. ;
Henry, Robert J. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2015, 49 :871-906
[88]   Laboratory customized online measurements for the prediction of the key-parameters of biomass quality control [J].
Mancini, M. ;
Duca, D. ;
Toscano, G. .
JOURNAL OF NEAR INFRARED SPECTROSCOPY, 2019, 27 (01) :15-25
[89]   Environmental costs and benefits of growing Miscanthus for bioenergy in the UK [J].
Mccalmont, Jon P. ;
Hastings, Astley ;
Mcnamara, Niall P. ;
Richter, Goetz M. ;
Robson, Paul ;
Donnison, Iain S. ;
Clifton-Brown, John .
GLOBAL CHANGE BIOLOGY BIOENERGY, 2017, 9 (03) :489-507
[90]   The German Lignocellulose Feedstock Biorefinery Project [J].
Michels, Jochen ;
Wagemann, Kurt .
BIOFUELS BIOPRODUCTS & BIOREFINING-BIOFPR, 2010, 4 (03) :263-267