Hydrophobic Modification of Pectin Aerogels via Chemical Vapor Deposition

被引:1
|
作者
Effraimopoulou, Eleni [1 ,2 ]
Jaxel, Julien [1 ]
Budtova, Tatiana [2 ]
Rigacci, Arnaud [1 ]
机构
[1] PSL Univ, Ctr Proc Renewable Energy & Energy Syst PERSEE, Mines Paris, F-06904 Sophia Antipolis, France
[2] PSL Univ, CNRS, Ctr Mat Forming CEMEF, UMR 7635,Mines Paris, F-06904 Sophia Antipolis, France
关键词
porous materials; aerogels; pectin; chemical vapor deposition; methyltrimethoxysilane; composite; hydrophobicity; thermo-hydric aging; thermal conductivity; THERMAL-CONDUCTIVITY; SILICA AEROGEL; TURNING POLYSACCHARIDES; CELLULOSE; TRANSPARENT; ESTERIFICATION; FABRICATION; CHITOSAN; STARCH; GREEN;
D O I
10.3390/polym16121628
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Pectin aerogels, with very low density (around 0.1 g cm-3) and high specific surface area (up to 600 m2 g-1), are excellent thermal insulation materials since their thermal conductivity is below that of air at ambient conditions (0.025 W m-1 K-1). However, due to their intrinsic hydrophilicity, pectin aerogels collapse when in contact with water vapor, losing superinsulating properties. In this work, first, pectin aerogels were made, and the influence of the different process parameters on the materials' structure and properties were studied. All neat pectin aerogels had a low density (0.04-0.11 g cm-1), high specific surface area (308-567 m2 g-1), and very low thermal conductivity (0.015-0.023 W m-1 K-1). Then, pectin aerogels were hydrophobized via the chemical vapor deposition of methyltrimethoxysilane using different reaction durations (2 to 24 h). The influence of hydrophobization on material properties, especially on thermal conductivity, was recorded by conditioning in a climate chamber (25 degrees C, 80% relative humidity). Hydrophobization resulted in the increase in thermal conductivity compared to that of neat pectin aerogels. MTMS deposition for 16 h was efficient for hydrophobizing pectin aerogels in moist environment (contact angle 115 degrees) and stabilizing material properties with no fluctuation in thermal conductivity (0.030 W m-1 K-1) and density for the testing period of 8 months.
引用
收藏
页数:18
相关论文
共 50 条
  • [1] Research Progress on Modification of Aerogels by Chemical Vapor Deposition
    Sun, Zhengyang
    Zhao, Kongli
    Yang, Haisen
    Liang, Jingjing
    Chen, Zixu
    Feng, Junzong
    Jiang, Yonggang
    Li, Liangjun
    Hu, Yijie
    Feng, Jian
    [J]. LANGMUIR, 2024, 40 (37) : 19304 - 19315
  • [2] Hydrophobic modification of bacterial cellulose using oxygen plasma treatment and chemical vapor deposition
    Leal, Salome
    Cristelo, Cecilia
    Silvestre, Sara
    Fortunato, Elvira
    Sousa, Aureliana
    Alves, Anabela
    Correia, D. M.
    Lanceros-Mendez, S.
    Gama, Miguel
    [J]. CELLULOSE, 2020, 27 (18) : 10733 - 10746
  • [3] Hydrophobic modification of bacterial cellulose using oxygen plasma treatment and chemical vapor deposition
    Salomé Leal
    Cecília Cristelo
    Sara Silvestre
    Elvira Fortunato
    Aureliana Sousa
    Anabela Alves
    D. M. Correia
    S. Lanceros-Mendez
    Miguel Gama
    [J]. Cellulose, 2020, 27 : 10733 - 10746
  • [4] Ultralight boron nitride aerogels via template-assisted chemical vapor deposition
    Yangxi Song
    Bin Li
    Siwei Yang
    Guqiao Ding
    Changrui Zhang
    Xiaoming Xie
    [J]. Scientific Reports, 5
  • [5] Ultralight boron nitride aerogels via template-assisted chemical vapor deposition
    Song, Yangxi
    Li, Bin
    Yang, Siwei
    Ding, Guqiao
    Zhang, Changrui
    Xie, Xiaoming
    [J]. SCIENTIFIC REPORTS, 2015, 5
  • [6] Improved stability of a supported liquid membrane process via hydrophobic modification of PVDF support by plasma activation and chemical vapor deposition
    Thi Tuong Van Tran
    Chi Hieu Nguyen
    Lin, Wei-Cheng
    Juang, Ruey-Shin
    [J]. SEPARATION AND PURIFICATION TECHNOLOGY, 2021, 277
  • [7] Deposition of α-alumina via combustion chemical vapor deposition
    Kelekanjeri, V. Siva Kumar G.
    Carter, W. B.
    Hampikian, J. M.
    [J]. THIN SOLID FILMS, 2006, 515 (04) : 1905 - 1911
  • [8] Formation of polycyanoacrylate - Silica nanocomposites by chemical vapor deposition of cyanoacrylates on aerogels
    Boday, Dylan J.
    DeFriend, Kimberly A.
    Wilson, Kennard V., Jr.
    Coder, David
    Loy, Douglas A.
    [J]. CHEMISTRY OF MATERIALS, 2008, 20 (09) : 2845 - 2847
  • [9] Roll-to-Roll Surface Modification of Cellulose Paper via Initiated Chemical Vapor Deposition
    Cheng, Christine
    Gupta, Malancha
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2018, 57 (34) : 11675 - 11680
  • [10] Aldehyde Approach to Hydrophobic Modification of Chitosan Aerogels
    Takeshita, Satoru
    Konishi, Arata
    Takebayashi, Yoshihiro
    Yoda, Satoshi
    Otake, Katsuto
    [J]. BIOMACROMOLECULES, 2017, 18 (07) : 2172 - 2178