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纤维素纳米晶体-琼脂糖-碳化钛复合水凝胶界面蒸发器的制备及在海水淡化和制浆废液处理中的应用

王晓法 陈嘉川 王宝斌 刘浩 李俊超 杨桂花

王晓法, 陈嘉川, 王宝斌, 等. 纤维素纳米晶体-琼脂糖-碳化钛复合水凝胶界面蒸发器的制备及在海水淡化和制浆废液处理中的应用[J]. 复合材料学报, 2024, 42(0): 1-12.
引用本文: 王晓法, 陈嘉川, 王宝斌, 等. 纤维素纳米晶体-琼脂糖-碳化钛复合水凝胶界面蒸发器的制备及在海水淡化和制浆废液处理中的应用[J]. 复合材料学报, 2024, 42(0): 1-12.
WANG Xiaofa, CHEN Jiachuan, WANG Baobin, et al. Preparation of cellulose nanocrystals-agarose-titanium carbide hydrogel interfacial evaporator for desalination and pulping waste liquid treatment[J]. Acta Materiae Compositae Sinica.
Citation: WANG Xiaofa, CHEN Jiachuan, WANG Baobin, et al. Preparation of cellulose nanocrystals-agarose-titanium carbide hydrogel interfacial evaporator for desalination and pulping waste liquid treatment[J]. Acta Materiae Compositae Sinica.

纤维素纳米晶体-琼脂糖-碳化钛复合水凝胶界面蒸发器的制备及在海水淡化和制浆废液处理中的应用

基金项目: 山东省自然科学基金(ZR2021QB069);国家自然科学基金 (22208177);山东省重点研发计划(2021CXGC010601);博士后面上基金(2023M730450);济南市科技局“新高校20条”(20233046)泰山学者领军人才。
详细信息
    通讯作者:

    陈嘉川,博士研究生,教授,博士生导师,研究方向为制浆造纸清洁生产及其生物基材料高值化利用 Email: chenjc@qlu.edu.cn

    王宝斌,博士研究生,讲师,硕士生导师,研究方向为生物基功能化水凝胶在界面蒸发器及其柔性电子方面的应用 E-mail:wangbaobin0408@163.com

  • 中图分类号: TB332

Preparation of cellulose nanocrystals-agarose-titanium carbide hydrogel interfacial evaporator for desalination and pulping waste liquid treatment

Funds: Natural Science Foundation of Shandong Province (No. ZR2021QB069); National Natural Science Foundation of China (No. 22208177); Provincial Key Research and Development Program of Shandong (No. 2021CXGC010601); China Postdoctoral Science Foundation Program (No. 2023M730450); Jinan Science and Technology Bureau project (No. 20233046) and Taishan Industrial Experts Programme.
  • 摘要: 淡水资源短缺和能源危机已经严重影响到人类社会的可持续发展。因此,探寻人类及工业用水清洁脱盐技术成为研究热点。近年来利用太阳能进行水资源脱盐技术发展成为低成本生产清洁淡水的有效途径。本研究以纤维素纳米晶体(Cellulose nanocrystals)为原料,琼脂糖(Agarose)作为水凝胶自交联网络,制备纤维素纳米晶体-琼脂糖-碳化钛(MXene)(Ce-CAM)复合水凝胶界面蒸发器。采用扫描电子显微镜、傅里叶变换红外光谱仪、流变仪对Ce-CAM复合水凝胶的物理化学性能进行分析表征,并对其在海水脱盐淡化和制浆废液净化处理方面的应用进行探究。结果表明,Ce-CAM复合水凝胶在250-2500 nm范围内的光吸收率为90%以上,在1 kW·m−2的光照强度下,其对3.5%氯化钠溶液和制浆废液的蒸发速率分别为1.44 kg·m−2·h−1、1.42 kg·m−2·h−1,且对Na+、Mg2+、K+、Ca2+四种离子去除率大于99.9%。其BOD、COD去除率分别可达到99.48%、99.53%。本研究可为基于水凝胶界面蒸发用于海水淡化和制浆废液净化处理提供了潜在的应用前景。

     

  • 图  1  纤维素纳米晶体-琼脂糖-碳化钛(MXene)(Ce-CAM)复合水凝胶及太阳能水蒸发器制备流程图

    Figure  1.  Schematic of the cellulose nanocrystals-agarose- titanium carbide (Ce-CAM) hydrogel derived solar interfacial evaporator

    图  2  扫描电镜图 (a1),(b1),(c1),(d1)和(a2),(b2),(c2),(d2)分别为Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4复合水凝胶样品的孔道和孔壁截面扫描电镜图

    Figure  2.  Scanning electron micrographs (a1), (b1), (c1), (d1) and (a2), (b2), (c2), (d2) are scanning electron micrographs of pore channel and pore wall cross sections of Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4 composite hydrogel samples, respectively

    图  3  Agar水凝胶, CNC-Agar水凝胶, Ce-CAM2复合水凝胶的储能模量(G')和损耗模量(G'')

    Figure  3.  Energy storage modulus (G') and loss modulus (G'') of Agar hydrogel, CNC-Agar hydrogel, Ce-CAM2 composite hydrogel

    图  4  CNC, Agar水凝胶, Ce-CAM2复合水凝胶的傅里叶红外变换光谱图

    Figure  4.  Fourier transform infrared spectra of CNC, Agar hydrogel, Ce-CAM2 composite hydrogel

    图  5  Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4复合水凝胶的饱和水含量

    Figure  5.  Saturated water content of Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4 composite hydrogels

    图  6  接触角:(a), (b), (c), (d)分别为水滴滴落在Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4复合水凝胶的动态接触角

    Figure  6.  Contact angles: (a), (b), (c), (d) are the dynamic contact angles of water droplets falling on Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4 composite hydrogels respectively

    图  7  (a). Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4复合水凝胶的氮气吸附-解吸曲线, (b). Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4复合水凝胶孔隙大小分布曲线

    Figure  7.  (a). Nitrogen adsorption-desorption curves of Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4 composite hydrogels, (b). Pore size distribution curves of Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4 composite hydrogels

    图  8  升温曲线:(a). 纯水, 3.5%氯化钠溶液, 制浆废液, Ce-CAM2复合水凝胶在一个太阳照射下升温曲线, (b). 漂浮在纯水中的Ce-CAM2复合水凝胶在一个太阳照射下的红外热成像图

    Figure  8.  Warming curves: (a). Warming curves of Ce-CAM2 composite hydrogel in pure water, 3.5% NaCl solution, pulping waste, under one sun irradiation, (b). Infrared thermography of Ce-CAM2 composite hydrogel floating in pure water under one sun irradiation

    图  9  在一个太阳照射下的红外热成像图:(a). 纯水, (b). 3.5%氯化钠溶液, (c). 制浆废液, (d). Ce-CAM2复合水凝胶

    Figure  9.  Infrared thermograms in a sun-illuminated: (a). Pure water, (b). 3.5% NaCl solution, (c). Pulping waste, (d). Ce-CAM2 composite hydrogel

    图  10  不同MXene量的Ce-CAM2复合水凝胶的太阳能吸收光谱

    Figure  10.  Solar absorption spectra of Ce-CAM2 composite hydrogels with different amounts of MXene

    图  11  海水淡化:(a). Ce-CAM2复合水凝胶在不同浓度氯化钠溶液中的蒸发速率, (b). 3.5%氯化钠溶液经过Ce-CAM2复合水凝胶蒸发前后溶液中Na+, Mg2+, K+, Ca2+四种主要离子的浓度变化

    Figure  11.  Desalination: (a). Evaporation rate of Ce-CAM2 composite hydrogel in different concentrations of NaCl solution, (b). Changes in the concentration of four major ions, Na+, Mg2+, K+ and Ca2+, in 3.5% NaCl solution before and after evaporation of Ce-CAM2 composite hydrogel

    图  12  废液蒸发: (a). C, 2 C, 3 C, 4 C分别为原制浆废液浓度, 原制浆废液浓度的两倍, 三倍, 四倍, (b). Ce-CAM2复合水凝胶在不同浓度制浆废液中的蒸发速率

    Figure  12.  Pulping waste liquid evaporation: (a). C, 2 C, 3 C, 4 C are the original concentration of pulping waste liquid, double, triple and quadruple of the original concentration of pulping waste liquid, respectively, (b). Evaporation rate of Ce-CAM2 composite hydrogel in different concentrations of pulping waste liquid.

    图  13  抗酸碱、抗盐性能:(a). Ce-CAM2复合水凝胶在1 mol·L−1 HCl和1 mol·L−1 NaOH溶液中的蒸发速率, (b). 1 mol·L−1盐酸和1 mol·L−1氢氧化钠蒸发前以及蒸发后收集蒸发液体的pH对比, (c). Ce-CAM2复合水凝胶的排盐能力

    Figure  13.  Acid, alkali and salt resistance: (a). Evaporation rate of Ce-CAM2 composite hydrogel in 1 mol·L−1 HCl and 1 mol·L−1 NaOH solutions, (b). Comparison of pH of the evaporated liquid collected before evaporation of 1 mol L−1 hydrochloric acid and 1 mol L−1 sodium hydroxide as well as after evaporation, (c). Salt exclusion capacity of Ce-CAM2 composite hydrogel

    表  1  Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4复合水凝胶平均孔径和比表面积

    Table  1.   Average pore size and specific surface area of Ce-CAM1, Ce-CAM2, Ce-CAM3, Ce-CAM4 composite hydrogels

    Sample Pore Diameter/nm Specific Surface Area /(m2·g−1)
    Ce-CAM1 2.99 0.27
    Ce-CAM2 3.13 5.68
    Ce-CAM3 2.92 17.02
    Ce-CAM4 3.02 53.50
    下载: 导出CSV

    表  2  制浆废液以及制浆废液净化后的冷凝收集液的各项理化性质

    Table  2.   Physical and chemical properties of pulping waste liquid and condensate collection liquid after purification of pulping waste liquid

    Sample pH Viscosity/
    (mPa·s)
    Conductivity/
    (mS·cm−1)
    Solid/
    (g·g−1)
    Suspension/
    (g·L−1)
    Ash/
    (g·g−1)
    BOD/
    (mg·L−1)
    COD/
    (mg·L−1)
    C 5.13 3 16.80 0.04 0.004 0.011 1726.67 40021.33
    C′ 4.82 1 0.17 0 0 0 8.93 187.33
    Notes: C is the concentration of the original pulping waste liquid, C′ is the condensate collected after the evaporation of the pulping waste liquid, BOD: biochemical oxygen demand, COD: chemical oxygen demand.
    下载: 导出CSV
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  • 收稿日期:  2024-06-19
  • 修回日期:  2024-07-22
  • 录用日期:  2024-08-03
  • 网络出版日期:  2024-08-28

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