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<title cf:type="text"><![CDATA[ -->生物质基功能材料]]></title>
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<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Recent Advances in the Preparation and Applications of Lignin-containing Cellulose Nanofibers]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512001&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[This paper summarized the preparation method combining mechanical defibration with green pretreatment such as alkaline treatment， acid hydrolysis， TEMPO oxidation， and low eutectic solvent， and explored the dual effect of lignin on defibration efficiency and the performance of nanofibers. Furthermore, the applications of LCNF in bioplastics, food packaging, and flexible electronics were summarized. Special attention was given to the role of lignin, noting that its retention not only improved hydrophobicity, thermal stability, and UV resistance, but also streamlined production by eliminating full delignification and thus reducing chemicals, energy use, and processing steps. Finally, the current challenges and future directions for the preparation and applications of LCNF were provided.]]></description>
<pubDate>2025/12/25 16:31:33</pubDate>
<category><![CDATA[生物质基功能材料]]></category>
<author><![CDATA[CAO Xinyu,XIANG Chen,XIAO Lingping,SUN Runcang]]></author>
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<atom:name>CAO Xinyu,XIANG Chen,XIAO Lingping,SUN Runcang</atom:name>
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<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512001&flag=1]]></guid><cfi:id>8</cfi:id><cfi:read>true</cfi:read></item>
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<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Recent Advances in Enhancing UVA Protection of Lignin-based Sunscreens]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512002&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[Lignin exhibits excellent UV protection and antioxidant properties due to its aromatic structure and the presence of functional groups such as phenolic hydroxyl groups， carbonyl groups， carboxyl groups， and double bonds that have UV absorption capabilities. In recent years， lignin has gained widespread attention in sunscreen research as a promising alternative to the mineral or synthetic organic UV protectants currently used in sunscreen products. The absence of extended conjugated systems in lignin’s molecular structure limits its absorption primarily to UVB radiation， necessitating further research to overcome its poor UVA protection and enhance its overall efficacy as a UV shield. This review summarized the structure-property relationships of lignin in UV resistance performance， with a particular emphasis on strategies and research advances in enhancing its UVA protection. Furthermore， the potential applications and future prospects of lignin in sunscreen products were discussed， providing valuable insights for the development of lignin-based sunscreens.]]></description>
<pubDate>2025/12/25 16:31:34</pubDate>
<category><![CDATA[生物质基功能材料]]></category>
<author><![CDATA[ZHANG Shen,ZHOU Qiwen,ZHOU Xin,YUE Fengxia]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>ZHANG Shen,ZHOU Qiwen,ZHOU Xin,YUE Fengxia</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512002&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[Ionization Strategy for Constructing Xylan-based Room-temperature Phosphorescent Materials]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512003&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[In this paper， xylan-based hemicellulose was used as raw material. Through directed oxidation-reduction reactions， xylan was converted into water-soluble ring-external primary hydroxyl xylan (RDAX). An ionic bonding strategy was employed to anchor sodium aryl carboxylate chromophores with conjugated structures onto the rigid xylan backbone， resulting in the preparation of color-tunable， long-lifetime xylan-based room-temperature phosphorescence (RTP) materials. Experiments demonstrated that xylan provided ample active cross-linking sites and a rigid environment through directed redox molecular restructuring. The rigid hydrogen bond network formed by restructured xylan synergistically stabilizes triplet excitons via ionic bonding， resulting in a phosphorescence lifetime of up to 1 293 ms for the RTP material. Additionally， the flexible RTP anti-counterfeiting film had also been successfully developed by utilizing the thermoplasticity of RDAX.]]></description>
<pubDate>2025/12/25 16:31:35</pubDate>
<category><![CDATA[生物质基功能材料]]></category>
<author><![CDATA[LI Minzhao,YAN Zhengxu,ZHANG Xinyuan,LYU Baozhong,PENG Feng]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>LI Minzhao,YAN Zhengxu,ZHANG Xinyuan,LYU Baozhong,PENG Feng</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512003&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[Preparation and Performance of Polyamide/Lignin Nanoparticle Composite Nanofiltration Membranes via Interfacial Polymerization]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512004&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[This study employed interfacial polymerization， using ethanol (EtOH) and ethylene glycol (EG) as the solvent system， to fabricate polyamide/lignin nanoparticle (LNP) composite nanofiltration membranes. By optimizing solvent type and reaction time， this study systematically analyzed the membrane structure and separation performance. The results showed that introducing LNP significantly promoted the interfacial polymerization reaction， enhancing the crosslinking degree and compactness of the polyamide layer. Compared with the pristine membrane， the LNP-EtOH composite nanofiltration membrane exhibited further improved hydrophilicity， with the water contact angle decreasing from 15.93° to 11.98°. Under optimized reaction conditions， the LNP–EtOH 2-1 nanofiltration membrane (2 indicated a 2-min reaction in the aqueous phase， 1 indicated a 1-min reaction in the oil phase) delivered the best performance， with a flux of 60.4 L/(m·h) and a rejection of 32.94% for NaCl， and a flux of 51.7 L/(m·h) and a rejection of 97.14% for Na<sub>2</sub>SO<sub>4</sub>.]]></description>
<pubDate>2025/12/25 16:31:36</pubDate>
<category><![CDATA[生物质基功能材料]]></category>
<author><![CDATA[LIU Hai,HAO Zhenxin,LYU Zilu,LI Chenyu,DAI Lin]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>LIU Hai,HAO Zhenxin,LYU Zilu,LI Chenyu,DAI Lin</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512004&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[Research Progress on Lignin-based Degradable Materials]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512005&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[Lignin， as the most abundant renewable aromatic polymer， has significant potential in the field of green materials due to its phenylpropane structure and biodegradability. This review focused on the molecular structure， material classification， preparation techniques， and functional modification of lignin， summarizing the research progress in lignin-based degradable materials. Lignin-based degradable materials were mainly categorized into three types： physically blended composites， chemically modified functional materials， and nanostructured materials. By physically blending lignin with natural or synthetic polymers， the mechanical properties and thermal stability of the materials were effectively enhanced. Chemical modification of its active sites enabled the targeted introduction of specific functionalities， such as antibacterial and UV-blocking properties. Furthermore， lignin nanoparticles constructed via nanotechnology demonstrated unique advantages in reinforcement， shielding， and drug delivery applications.]]></description>
<pubDate>2025/12/25 16:31:37</pubDate>
<category><![CDATA[生物质基功能材料]]></category>
<author><![CDATA[XU Bohao,SHANG Xinlong,HUANG Meijie,WANG Qinhua]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>XU Bohao,SHANG Xinlong,HUANG Meijie,WANG Qinhua</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512005&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 and Application Progress of Lignin-based Aldehyde Adhesives for Wood-based Panels]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512006&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[At present， aldehyde-based adhesives remain the dominant type of adhesive employed in the wood-based panel industry. Consequently， the research and application of lignin in aldehyde-based adhesives for wood-based panels are of great significance. This paper reviewed the current research and application status of lignin in aldehyde-based adhesives for wood-based panels， focusing on the types and properties of industrial lignin that could be used as raw materials for synthesizing aldehyde-based adhesives for wood-based panels at this stage， the activation methods of lignin， and the development history of lignin-based adhesives technology for wood-based panels. Finally， the future development directions of lignin-based aldehyde adhesives were prospected.]]></description>
<pubDate>2025/12/25 16:31:38</pubDate>
<category><![CDATA[生物质基功能材料]]></category>
<author><![CDATA[ZHOU Tong,YANG Sheng,YUAN Tongqi]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>ZHOU Tong,YANG Sheng,YUAN Tongqi</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512006&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 Cellulose-based Wood Adhesives]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512007&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[Cellulose， as the most abundant renewable resource in nature， is regarded as an ideal candidate material for formaldehyde-free wood adhesives due to its biodegradability， cost-effectiveness， and ease of modification. This paper summarized the physical pretreatment and chemical modification strategies of cellulose， outlines the application performance of modified traditional resins or directly prepared wood adhesives using cellulose， analyzed their performance in terms of bonding strength and water resistance， and provided prospects for the development of cellulose-based wood adhesives.]]></description>
<pubDate>2025/12/25 16:31:38</pubDate>
<category><![CDATA[生物质基功能材料]]></category>
<author><![CDATA[LIU Tongda,SHAO Yating,LU Tonghua,DU Guanben,YANG Long]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>LIU Tongda,SHAO Yating,LU Tonghua,DU Guanben,YANG Long</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512007&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[Analysis of Fiber Morphology and Chemical Composition of Six Wild Vine Species]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512008&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[In this study, the fiber morphology, physical properties and chemical composition of the bast fibers of six wild vine species, including <i>Byttneria grandifolia</i> Candolle, <i>Sargentodoxa cuneata </i>(Oliver) Rehder &amp; E. H. Wilson, <i>Bauhinia touranensis</i> Gagnepain, <i>Elaeagnus conferta</i> Roxburgh, <i>Vitis heyneana </i>Roemer &amp; Schultes, <i>Dalbergia mimosoides</i> Franchet, were examined and analyzed. The results showed that the fiber lengths of the six vine species were in the range of 0.81~2.09 mm, and the length-to-width ratio of the <i>Bauhinia touranensis</i> Gagnepain fibers was the largest (98.5); the density of the <i>Sargentodoxa cuneata</i> (Oliver) Rehder &amp; E. H. Wilson was the smallest (1.58 g/cm<sup>3</sup>), the <i>Bauhinia touranensis</i> Gagnepain microfibrillar filament angle was the smallest (6°~9°), and the degree of crystallinity was the highest (88.83%), and the mechanical performance of the <i>Byttneria grandifolia</i> Candolle fibers was the best, with the wet zero-distance tensile index of 45.8 N·m/g, In terms of chemical composition, <i>Sargentodoxa cuneata</i> (Oliver) Rehder &amp; E.H. Wilson had the highest cellulose content (34.83%) and hemicellulose content (19.28%) and the lowest ash content (2.51%).It was speculated that <i>Sagentodoxa cuneata</i> (Oliver) Rehder &amp; E.F.Wilson fibers were more suitable for pulp and paper production and biomass utilization.]]></description>
<pubDate>2025/12/25 16:31:39</pubDate>
<category><![CDATA[生物质基功能材料]]></category>
<author><![CDATA[SONG Ying,YUE Fengxia,LIU Chuanfu,LIU Mengru,LI Hailong,REN Junli]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>SONG Ying,YUE Fengxia,LIU Chuanfu,LIU Mengru,LI Hailong,REN Junli</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202512008&flag=1]]></guid><cfi:id>1</cfi:id><cfi:read>true</cfi:read></item>
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