<?xml version="1.0" encoding="utf-8"?>
<rss version="2.0" xmlns:atom="http://www.w3.org/2005/Atom" xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005">
<channel xmlns:cfi="http://www.microsoft.com/schemas/rss/core/2005/internal" cfi:lastdownloaderror="None">
<title cf:type="text"><![CDATA[ -->Clean Separation & High-value Utilization of Fiber Components]]></title>
<item>
<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Effects of Pretreatment with Acidic/Alkaline Deep Eutectic Solvents on Physical and Chemical Properties and Cellulose Enzymatic Hydrolysis of Balsa Wood]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202406001&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[Balsa wood was subjected to acidic/alkaline deep eutectic solvent （DES） pretreatment at 110 ℃ for 5 h， and the chemical composition， surface morphology， structural variation， and enzymatic hydrolysis performance of the balsa wood before and after pretreatment were analyzed. The results showed that all three types of acidic/alkaline DES pretreatments effectively deconstructed the balsa wood raw material. The acidic DES removed nearly all hemicelluloses and a portion of lignin， with the stronger acidic treatment using acidic aluminum chloride hexahydrate/propanetriol system resulting in partial cellulose degradation. The alkaline choline chloride/ethanolamine system pretreatment led to substantial removal of lignin while preserving a significant amount of carbohydrates in the residue. The pretreatment significantly enhanced cellulase hydrolysis， increasing the glucose yield from 16.5% in the raw material to 52.6%~60.7%. Even after being recycled three times， the cellulose hydrolysis rate of DES remained more than 2.5 times higher than that of the raw material.]]></description>
<pubDate>2024/6/25 9:40:40</pubDate>
<category><![CDATA[Clean Separation & High-value Utilization of Fiber Components]]></category>
<author><![CDATA[TANG Yiquan,RUI Anna,YANG Jiyou,SHANG Sainan,SI Chuanling,BIAN Jing]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>TANG Yiquan,RUI Anna,YANG Jiyou,SHANG Sainan,SI Chuanling,BIAN Jing</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202406001&flag=1]]></guid><cfi:id>7</cfi:id><cfi:read>true</cfi:read></item>
<item>
<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Study on the Preparation of Sugarcane Cellulose Aerogel Based on Top-down Method and Oil-water Separation Properties]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202406002&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[In this study， sugarcane cellulose aerogel with anisotropy was prepared by top-down method using sugarcane as raw material. The lignin and hemicellulose in sugarcane cell wall were removed <i>in</i>-<i>situ</i> using NaOH and H<sub>2</sub>O<sub>2</sub>， and then TEMPO oxidation method was used to separate the originally gathered cellulose， and sugarcane cellulose aerogel was obtained after freeze-drying. The samples were characterized by universal material testing machine， specific surface area and aperture analyzer， and thermogravimetric analyzer. The results showed that the maximum stress sugarcane cellulose aerogel was up to 0.28 MPa and it’s specific surface area was up to 22.4 m<sup>2</sup>/g which showed excellent thermal stability. After hydrophobic modification with methyltrimethoxysilane （MTMS）， the sugarcane cellulose aerogel was transformed into a superhydrophobic cellulose aerogel with water contact angle up to 147.17° and the maximum oil adsorption up to 15.86 g/g.]]></description>
<pubDate>2024/6/25 9:40:42</pubDate>
<category><![CDATA[Clean Separation & High-value Utilization of Fiber Components]]></category>
<author><![CDATA[CHANG Junxia,CHEN Xinyi,ZHOU Wei,REN Mengyu,YANG Shujuan,YANG Fei,ZHANG Yong]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>CHANG Junxia,CHEN Xinyi,ZHOU Wei,REN Mengyu,YANG Shujuan,YANG Fei,ZHANG Yong</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202406002&flag=1]]></guid><cfi:id>6</cfi:id><cfi:read>true</cfi:read></item>
<item>
<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Research Progress in the Preparation and Application of Carboxymethyl Cellulose Conductive Hydrogels]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202406003&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[Carboxymethyl cellulose is an important cellulose derivative that has drawn much attention due to its accessibility， affordability， and environmental friendliness. This paper briefly introduced the physical and chemical preparation methods of carboxymethyl cellulose conductive hydrogels， described their mechanical properties， electrical conductivity， strain sensitivity， self-adhesion， self-healing， biocompatibility， anti-freezing and water retention properties， elaborated their application in the field of sensors， supercapacitors， and batteries， summarizes the challenges encountered by them， and predicted their development direction in the future， thus provided a certain basis for the high-value utilization of carboxymethyl cellulose.]]></description>
<pubDate>2024/6/25 9:40:42</pubDate>
<category><![CDATA[Clean Separation & High-value Utilization of Fiber Components]]></category>
<author><![CDATA[XUE Hong,LI Haiming]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>XUE Hong,LI Haiming</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202406003&flag=1]]></guid><cfi:id>5</cfi:id><cfi:read>true</cfi:read></item>
<item>
<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Progress in Preparation Methods of Full-component Lignocellulosic Gel Materials]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202406004&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[Lignocellulosic gel materials had good biocompatibility and degradability besides the advantages of traditional gels， which had attracted wide attention in the fields of adsorption， energy storage， sensing， catalysis， biomedicine， and thermal insulation. In this paper， firstly， the preparation methods of full-component lignocellulosic gels from the point of physical cross-linking and chemical cross-linking were addressed. Then， the structure， properties， and applications of fabricated lignocellulosic gels by all methods were summarized. Finally， the development trend of full-component lignocellulosic gels were prospected combining the problems in the process of full-component lignocellulosic gel preparation.]]></description>
<pubDate>2024/6/25 9:40:44</pubDate>
<category><![CDATA[Clean Separation & High-value Utilization of Fiber Components]]></category>
<author><![CDATA[HUANG Qiaoling,LI Zerong,XU Yonglin,HU Jialong,CUI Jinghao,GUO Binhui,LI Wei]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>HUANG Qiaoling,LI Zerong,XU Yonglin,HU Jialong,CUI Jinghao,GUO Binhui,LI Wei</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202406004&flag=1]]></guid><cfi:id>4</cfi:id><cfi:read>true</cfi:read></item>
<item>
<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Research Progress on the Fractionation of the Biomass Components Based on Lignin Condensation Inhibition]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202603002&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[Current industrial technology for separating lignin inevitably leads to severe condensation reactions in lignin due to its stringent reaction conditions， increasing the cost of its high-value utilization. Recently， research has found that the condensation of lignin can be restricted by precisely regulating its active sites during the separation process. This not only ensures separation efficiency but also enhances the potential for high-value utilization of lignin， opening new directions for the efficient utilization of lignocellulosic biomass. This paper reviewed the research strategy on the separation process of lignocellulosic biomass components under lignin condensation regulation， focusing on the condensation reaction mechanisms and their influences under different biomass component separation strategy， lignin condensation regulation strategies， and their effects on lignocellulosic component separation. It summarized the current status of lignin condensation inhibition research and the challenges in industrialization， and outlined the future development prospects.]]></description>
<pubDate>2026/3/24 15:05:56</pubDate>
<category><![CDATA[Clean Separation & High-value Utilization of Fiber Components]]></category>
<author><![CDATA[ZHAO Kun,BU Qi,FU Yingjuan,ZHANG Yongchao]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>ZHAO Kun,BU Qi,FU Yingjuan,ZHANG Yongchao</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202603002&flag=1]]></guid><cfi:id>3</cfi:id><cfi:read>true</cfi:read></item>
<item>
<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Advances in the Preparation Methods and Applications of Micro/Nano Lignin]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202603003&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[Micro/nano lignin not only retains the intrinsic properties of lignin， such as antibacterial， antioxidant， and UV-shielding activities， but also exhibits the advantages of nanomaterials， including large specific surface area and abundant active sites. Owing to these features， micro/nano lignin had been widely explored in the preparation of chemicals such as adhesives， UV absorbers， and antimicrobial agents. This review summarized the preparation techniques and application progress of micro/nano lignin， with particular emphasis on the advantages and disadvantages of different preparation methods. In addition， recent research developments in its applications as adhesives， UV-shielding agents， antimicrobial materials， catalytic supports， and drug delivery carriers were outlined. The aim was to provide theoretical guidance and technical references for the precise structural regulation and high-value utilization of micro/nano lignin.]]></description>
<pubDate>2026/3/24 15:05:58</pubDate>
<category><![CDATA[Clean Separation & High-value Utilization of Fiber Components]]></category>
<author><![CDATA[SHAO Wenxuan,XIA Guangmei,WANG Shoujuan,KONG Fangong,XI Yuebin,ZHANG Fengshan]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>SHAO Wenxuan,XIA Guangmei,WANG Shoujuan,KONG Fangong,XI Yuebin,ZHANG Fengshan</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202603003&flag=1]]></guid><cfi:id>2</cfi:id><cfi:read>true</cfi:read></item>
<item>
<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Study on Performance of Methanol Protein-modified Cellulose Regenerated Fibers]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202603004&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[This study prepared methanol-protein modified cellulose fibers (SCP-RCF) by wet spinning after subjecting methanol protein and cotton cellulose to physical blending dissolution and chemical crosslinking blending dissolution in TBAH/DMSO/H<sub>2</sub>O solvent system， respectively. Structural characterization and performance testing of SCP-RCF were conducted using Fourier Transform Infrared Spectroscopy (FT-IR)， X-ray Diffraction (XRD)， single-fiber strength tester， and Kjeldahl nitrogen analyzer. The result showed that physical blended SCP-RCF exhibited poor mechanical properties and low protein retention after washing. At a fixed methanol protein addition amount of 10%， chemical crosslinking experiments revealed that adding 1，4-butanediol diglycidyl ether (BDDE) significantly enhanced overall performance. At a BDDE addition amount of 5%， the breaking strength of prepared SCP-RCF increased from 1.5 cN/dtex to 1.78 cN/dtex， the elongation at break rose from 6.4% to 12.5%， and the protein retention rate after washing improved from 24.9% to 65.1%.]]></description>
<pubDate>2026/3/24 15:05:59</pubDate>
<category><![CDATA[Clean Separation & High-value Utilization of Fiber Components]]></category>
<author><![CDATA[ZHANG Haoran,CAO Jian,LYU Yangyong,WEI Shan,LEI Yang,LIU Dongqi,HU Yuansen]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>ZHANG Haoran,CAO Jian,LYU Yangyong,WEI Shan,LEI Yang,LIU Dongqi,HU Yuansen</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202603004&flag=1]]></guid><cfi:id>1</cfi:id><cfi:read>true</cfi:read></item>
</channel>
</rss>