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    题名 作者 年代 出处 被引量
1Nanofibrillation of a Bleached Acacia Pulp by Grinding with Carboxymethylation Pretreatment显示文摘In this study,carboxymethylation,which introduces carboxyl groups to hydroxyl sites in pulp fibers,was used as a pretreatment before mechanical nanofibrillation.The carboxyl group content of the pulp fibers was greatly affected by the dosage of chloroacetic acid and the reaction temperature.During the following fibrillation process,it was found that pulp fibers with higher carboxyl group content exhibited higher water holding capacities and smaller dimensions.A more homogenous structure with a higher amount of individual fibrils was also observed in FE-SEM images of pulp fibers with high carboxyl group content.This can be explained by a high ionic group content in the fiber wall resulting in lower delamination resistance,making the fibrils easier to separate.Carboxymethylation pretreatment as a facilitator of fibrillation in cellulosic pulps is an efficient way to obtain cellulose nanofibrils and consequently decrease the energy consumption of the process.Ming He GuiHua Yang JiaChuan Chen FanGong Kong Qiang Wang 2018Paper And Biomaterials2018,3,3:6
2Cellulose-based Antimicrobial Composites and Applications: A Brief Review显示文摘Cellulose-based antimicrobial composites,typically in the form of functional films and cloth,have received much attention in various applications,such as food,medical and textile industries.Cellulose is a natural polymer,and is highly biodegradable,green,and sustainable.Imparting antimicrobial properties to cellulose,will significantly enhance its applications so that its commercial value can be boosted.In this review paper,the use of cellulose for antimicrobial composites’preparation was discussed.Two different approaches:surface loading/coating and interior embedding,were focused.Three most widely-applied sectors:food,medical and textile industries,were highlighted.Nanocellulose,as a leading-edge cellulose material,its unique application on the antimicrobial composites,was particularly discussed.Bo Sun Fangong Kong Min Zhang Weijun Wang Birat Singh KC Jimi Tjong Mohini Sain 2019Paper And Biomaterials2019,4,4:5
3The gibberellin biosynthetic genes AtGA20ox1 and AtGA20ox2 act, partially redundantly, to promote growth and development throughout the Arabidopsis life cycle显示文摘IvoRieu OmarRuiz‐Rivero NievesFernandez‐Garcia JayneGriffiths Stephen J.Powers FanGong TerezieLinhartova SvenEriksson OveNilsson Stephen G.Thomas Andrew L.Phillips PeterHedden 2007The Plant Journal2007,,3:1
4A Partial Magnesium Hy- droxide Substitution for Sodium Hydroxide in Peroxide Bleaching of an Aspen CTMP显示文摘Kong Fangong Ni Yonghao He Zhibin 2009Journal of Wood Chemistry and Technology2009,29,:1
5Eutectic-derived high-entropy nanoporous nanowires for efficient and stable water-to-hydrogen conversion显示文摘Combining multiple metal elements into one nanostructure merits untold application potential but is still a challenge for the traditional bottom-up synthesis method.Herein,we propose a eutectic-directed self-templating strategy to prepare two multicomponent nanostructured alloys(PtPdRhIrNi(D-SN)and NiPtPdRhIrAl(D-SS))through the combination of rapid solidification with dealloying.The PtPdRhIrNi nanoporous nanowires(NPNWs)represent a new family of high-entropy alloys(HEAs)containing delicate hierarchical nanostructure with ultrafine ligament sizes of~2 nm in addition to one-dimensional(1D)morphology.Moreover,the PtPdRhIrNi NPNWs display excellent electrocatalytic activity and stability toward hydrogen evolution reaction,with the low overpotential of 22 and 55 mV to afford a current density of 10 mA·cm^(−2)in 0.5 M H_(2)SO_(4)and 1.0 M KOH electrolytes,respectively.The enhanced electrocatalytic performance can be attributed to the high-entropy effect favoring the surface electronic structure for the optimized activity,the promotion impact of Ni,1D morphology facilitating the electron transport,and the nanoporous structure promoting the electrolyte diffusion.Ying Wang Bin Yu Ming He Zhihua Zhai Kuibo Yin Fangong Kong Zhonghua Zhang 2022Nano Research2022,15,6:1
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