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<title cf:type="text"><![CDATA[ -->纤维素基功能与智能材料]]></title>
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<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Preparation and Evaporation Performance Study of Graphene Oxide Cellulose Aerogel Composite Photothermal Materials]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202602015&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[Graphene oxide cellulose aerogel (GO@CA) was prepared by a one-pot method based on the lithium bromide inorganic molten salt system using microcrystalline cellulose as the raw material. The effects of three different Hummers methods on the structure and performance of graphene oxide (GO) were investigated, and the optimal GO was selected for the preparation of GO@CA and its application effect in solar interfacial evaporation was evaluated. The results showed that the GO@CA had a three-dimensional hierarchical pore network, with a light absorption rate of up to 96%~97% in the 300~2 500 nm spectral range. Under 1 kW/m² irradiation, its evaporation rate reached 2.24 kg/(m²·h), and it exhibited excellent cycling stability and seawater desalination capacity. Through the synergistic design of the photothermal component and the porous substrate, this aerogel achieved efficient photothermal conversion and water transport, providing a feasible strategy for solar-driven water purification.]]></description>
<pubDate>2026/2/26 13:11:37</pubDate>
<category><![CDATA[纤维素基功能与智能材料]]></category>
<author><![CDATA[GUO Luxuan,CAO Xinyu,JIA Wenchao,HUANG Lingzhi,WU Lu,NIU Meihong,SHI Haiqiang]]></author>
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<atom:name>GUO Luxuan,CAO Xinyu,JIA Wenchao,HUANG Lingzhi,WU Lu,NIU Meihong,SHI Haiqiang</atom:name>
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<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Preparation and Properties of Nanocellulose/Metal Organic Framework Composite Proton Exchange Membranes]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202602016&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[To overcome the performance degradation of proton exchange membranes under high-temperature and low-humidity conditions， as well as their inadequate dimensional stability under high humidity， a construction strategy for nanocellulose-based proton exchage membranes (PEMs) was proposed. Sulfonated cellulose nanocrystals were first prepared via sulfuric acid hydrolysis followed by high-pressure homogenization. Subsequently， sulfonated metal-organic frameworks (UiO-66-SO<sub>3</sub>H) were grown <i>in situ</i> on carbon nanotubes (CNTs) surface to form hybrid fillers (S-UiO-66@CNT) with enhanced interfacial synergy. The SCNC@S-UiO-66@CNT composite membranes were then assembled through vacuum-assisted filtration. The resulting architecture effectively suppressed the aggregation of S-UiO-66@CNT and promoted uniform dispersion of fillers within the SCNCs matrix， thereby constructing continuous proton transport pathways. This hierarchical structure enhanced water adsorption and retention abilities， significantly improving the proton conductivity. At an optimized mass ratio of 10∶1 (S-UiO-66@CNT to SCNCs)， the composite membrane exhibited an outstanding tensile strength of 163 MPa and a remarkably low water swelling ratio of 7.1%. Notably， the proton conductivity reached 150.0 mS/cm at 80 ℃ and 100% relative humidity， and remained as high as 61.8 mS/cm even at 33% relative humidity.]]></description>
<pubDate>2026/2/26 13:11:38</pubDate>
<category><![CDATA[纤维素基功能与智能材料]]></category>
<author><![CDATA[ZHANG Sufeng,LI Nan,LI Jinrui]]></author>
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<atom:name>ZHANG Sufeng,LI Nan,LI Jinrui</atom:name>
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<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Effect of TEMPO-oxidized Nanocellulose on Properties of Polyacrylamide Composite Hydrogels]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202602017&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[TEMPO-oxidized nanocellulose (TOCNF) were introduced into a polyacrylamide/sodium alginate/tannic acid (PAM/SA/TA) system. A nanocellulose reinforced polyacrylamide (TA@TOCNF/PAM/SA) composite hydrogel was prepared by a one-pot combing UV-curing method. The TOCNF addition amount was tuned to strengthen multiple hydrogen-bonding interactions within the network. This strategy improved both mechanical performance and hygrothermal stability. At an optimized TOCNF addition amount of 1.5%， the composite hydrogel reached a tensile strength of 145 kPa and an elongation at break of 227%. The water retention increased up to 75.8% after standing at 25 ℃ for 18 h. After seven consecutive loading-unloading stretching cycles， the elastic recovery remained above 95%， indicating strong fatigue resistance and reliable elastic recovery.]]></description>
<pubDate>2026/2/26 13:11:38</pubDate>
<category><![CDATA[纤维素基功能与智能材料]]></category>
<author><![CDATA[GUO Zhengshen,DONG Youheng,LI Yuhang,WANG Yukang,WANG Quanliang]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>GUO Zhengshen,DONG Youheng,LI Yuhang,WANG Yukang,WANG Quanliang</atom:name>
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<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202602017&flag=1]]></guid><cfi:id>4</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[Preparation and Reductive Adsorption of Cr(Ⅵ) in Waste Water by Modified Thiolated Cellulose]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202602018&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[This study successfully prepared a thiol/sulfonic acid dual-functionalized modified cellulose adsorbent (L-TDAC) for the efficient removal of Cr(Ⅵ) from waste water. Taurine and L-cysteine were grafted onto the cellulose backbone via periodate oxidation followed by Schiff base reactions. Material characterization confirmed the successful introduction of sulfonic acid and thiol groups. Under conditions of pH value was 3.0， adsorbent dosage was 50 mg， initial Cr(Ⅵ) concentration was 100 mg/L， L-TDAC exhibited a maximum Cr(Ⅵ) adsorption capacity of 96.33 mg/g. The adsorption process followed pseudo-second-order kinetics and the Langmuir isotherm model， indicating monolayer chemisorption. Mechanistic analysis revealed a synergistic “adsorption-reduction-immobilization”process the thiol groups reduced the adsorbed Cr(Ⅵ) to Cr(Ⅲ) <i>in situ</i>， and the generated Cr(Ⅲ) was subsequently complexed and fixed by functional groups such as sulfonic acid. The material demonstrated good regenerability， maintaining a removal efficiency above 80% after 6 adsorption-desorption cycles， highlighting its potential as a green adsorbent for treating chromium-containing wastewater.]]></description>
<pubDate>2026/2/26 13:11:40</pubDate>
<category><![CDATA[纤维素基功能与智能材料]]></category>
<author><![CDATA[DU Yichun,JIANG Xue,JIAO Xinye,XIANG Zhong,XIAO Jiale,XU Gongtao,TIAN Xiuzhi]]></author>
<atom:author xmlns:atom="http://www.w3.org/2005/Atom">
<atom:name>DU Yichun,JIANG Xue,JIAO Xinye,XIANG Zhong,XIAO Jiale,XU Gongtao,TIAN Xiuzhi</atom:name>
</atom:author>
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<title xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="text"><![CDATA[Study of the Development of Nanocellulose-based Antibacterial Composite Materials]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202602019&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[Nanocellulose， as a type of nano-sized cellulose derivatives and side products sourced from biomass， has attracted enormous attention as a green carrier due to its excellent biocompatibility， abundant hydroxyl groups， extraordinary mechanical strength， and high surface area. The antibacterial composite materials consisting of nanocellulose loaded antibacterial agents have been widely used in food industry， personal care products， medical dressings， and water treatment， etc. This paper discussed the structure， properties， and modification approaches of nanocellulose， as well as its loaded antibacterial agents， such as metal/metal oxide， antibiotics， synthetic agents， and natural extractives. The typical applications and market progress of antibacterial composites in the food industry and personal care industry was further highlighted. Finally， the challenges and oppotunities of nanocellulose in the antibacterial areas were described， along with the future perspectives of the development of nanocellulose antibacterial composite materials.]]></description>
<pubDate>2026/2/26 13:11:40</pubDate>
<category><![CDATA[纤维素基功能与智能材料]]></category>
<author><![CDATA[SUN Bo,HE Zhibin,NI Yonghao]]></author>
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<atom:name>SUN Bo,HE Zhibin,NI Yonghao</atom:name>
</atom:author>
<guid><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202602019&flag=1]]></guid><cfi:id>2</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[Cellulose-based Antibacterial Materials: Preparation, Mechanisms, and Applications]]></title>
<link><![CDATA[http://zgzz.ijournals.cn/zgzzen/ch/reader/view_abstract.aspx?file_no=202602020&flag=1]]></link>
<description xmlns:cf="http://www.microsoft.com/schemas/rss/core/2005" cf:type="html"><![CDATA[This paper provided a systematic review of the preparation， mechanisms of action， and application prospects of cellulose-based antibacterial materials across multiple fields. The article began by introducing the classification and construction strategies of antibacterial materials， with a particular focused on the physicochemical properties of cellulose substrates and their unique advantages in the antibacterial domain. Subsequently， it offered a detailed analysis of the preparation methods for cellulose-based antibacterial materials， including strategies such as physical loading， chemical modification， and blend spinning， while comparing the advantages and disadvantages of different approaches. Furthermore， while outlining the applications of cellulose-based materials in antibacterial contexts， highlighted a significant trend in functional development—long-lasting antibacterial efficacy. Finally， it discussed the challenges facing cellulose-based antibacterial materials， and proposed future research directions.]]></description>
<pubDate>2026/2/26 13:11:41</pubDate>
<category><![CDATA[纤维素基功能与智能材料]]></category>
<author><![CDATA[AN Gaorui,YAN Jipeng,SUN Jian]]></author>
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<atom:name>AN Gaorui,YAN Jipeng,SUN Jian</atom:name>
</atom:author>
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