The monolayer structure of the branched nonyl phenol oxyethylene glycols at the air-water interface

被引:19
|
作者
Green, SR
Su, TJ
Lu, JR [1 ]
Penfold, J
机构
[1] Univ Surrey, Dept Chem, Guildford GU2 5XH, Surrey, England
[2] CCLRC, Rutherford Appleton Lab, ISIS Facil, Didcot OX11 0QX, Oxon, England
来源
JOURNAL OF PHYSICAL CHEMISTRY B | 2000年 / 104卷 / 07期
关键词
D O I
10.1021/jp9919009
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The structure of the monolayers formed by a group of monodisperse nonyl phenol ethoxylates with parasubstituted 1-butylpentyl chains (para-(C4H9)(2)CHC6H4(OC2H4)(n)OH, abbreviated to BNPEn, n = 4, 8, and 12) at the air-water interface has been determined by surface tension measurements and neutron reflection. The critical micellar concentration (cmc) was found to be 1.1 +/- 0.3 x 10(-5) M for BNPE4, 4.0 +/- 0.3 x 10(-5) M for BNPE8 and 8.0 +/- 0.3 x 10-5 M for BNPE12 and the limiting area per molecule (A(cmc)) at the cmc to be 46 +/- 3, 61 +/- 4, and 75 +/- 5 Angstrom(2), respectively. The values of A(cmc) are almost identical to those obtained from dodecyl ethoxylates (C12En) for the same size of the headgroups, suggesting that A(cmc) for these nonionic surfactants is determined by the size of the headgroups and is not affected by the chemical structure of the hydrophobic chains. The thicknesses of the nonyl phenol layers projected onto the surface normal direction were found to be 18 +/- 3 Angstrom for BNPE4, 19 +/- 3 Angstrom for BNPE8, and 22 +/- 3 Angstrom for BNPE12. In all cases they were about twice as thick as the fully extended chain, suggesting a broad distribution of the hydrophobic chain across the layer and hence a strong mixing of the chain with the ethoxylate groups.
引用
收藏
页码:1507 / 1515
页数:9
相关论文
共 50 条
  • [21] Incorporation of β-lactoglobulin in a lipid/porphyrin monolayer at the air-water interface
    da Silva, AMG
    Romao, RS
    Costa, SMB
    CHEMISTRY AND PHYSICS OF LIPIDS, 2004, 127 (01) : 77 - 90
  • [22] Interaction of DPPC monolayer at air-water interface with hydrophobic ions
    Shapovalov, VL
    THIN SOLID FILMS, 1998, 327 : 599 - 602
  • [23] Monolayer and multilayer of a liquid crystal copolysiloxane at the air-water interface
    Mu, J
    Okamoto, H
    Takenaka, S
    Feng, XS
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2000, 172 (1-3) : 87 - 90
  • [24] The photochemical reaction of phenol becomes ultrafast at the air-water interface
    Kusaka, Ryoji
    Nihonyanagi, Satoshi
    Tahara, Tahei
    NATURE CHEMISTRY, 2021, 13 (04) : 306 - 311
  • [25] Nonlinear mechanical behaviors of a nanoparticle monolayer at the air-water interface
    Yongjian Zhang
    Jiaqi Si
    Qirui Cui
    Gengtao Wang
    Yujie Bai
    The European Physical Journal E, 2018, 41
  • [27] Orientational phase transition in molecular monolayer on an air-water interface
    Jiang, M
    Zhong, F
    Xing, DY
    Wang, ZD
    Dong, JM
    JOURNAL OF CHEMICAL PHYSICS, 1997, 106 (14): : 6171 - 6175
  • [28] Interaction between polylysine monolayer and DNA at the air-water interface
    Niwa, M
    Morikawa, M
    Yagi, K
    Higashi, N
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2002, 30 (01) : 47 - 54
  • [29] Interaction of naringin and naringenin with DPPC monolayer at the air-water interface
    Souza, F. R.
    Fornasier, F.
    Souza, L. M. P.
    Penafiel, M. P.
    Nascimento, J. B.
    Malfatti-Gasperini, A. A.
    Pimentel, A. S.
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2020, 584
  • [30] Structure of a phenylacetylene macrocycle at the air-water interface
    Mindyuk, OY
    Stetzer, MR
    Gidalevitz, D
    Heiney, PA
    Nelson, JC
    Moore, JS
    LANGMUIR, 1999, 15 (20) : 6897 - 6900