The kinetics of moisture sorption by hair.

IF 2.7 4区 医学 Q2 DERMATOLOGY International Journal of Cosmetic Science Pub Date : 2024-11-11 DOI:10.1111/ics.13028
S Breakspear, T Evans, P Frueh, A Neu, B Noecker, C Popescu, Q Uellner
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Abstract

Objective: The rate process of moisture sorption by human hair has been analysed in order to hints for helping deepen knowledge on the hair structure and to explain the behaviour of hair in response to moisture.

Methods: The isotherms of moisture sorption by hair were recorded, via dynamic vapour sorption (DVS), for untreated (virgin) and treated (heat-shaped and bleached) hair, as well as for separated cuticle and cortex.

Results: By considering that, during moisture uptake, the hair fibres also swell, it is possible to introduce a time-dependent rate constant for describing the kinetics of the moisture sorption. This model allows for clearly separating the moisture sorption processes occurring in Cuticle and in Cortex and for proposing a role of chain entanglement in the two main compartments of the fibre. It may also provide some hints on the structural changes occurring in the fibre after different cosmetic treatments. The influence of the weight of the sample on the kinetics of the sorption process has also been noted and quantified. The analysis pointed to a transition occurring at around 30% relative humidity, assigned to the opening of the hair inner structure, and accommodation of more water molecules. This allowed for an estimate of the value of the activation energy of the water molecules reacting with the active sites, which was found to be in good agreement with results published in the literature.

Conclusion: The analysis of the kinetics of moisture sorption by hair was shown not only to provide information on the chain entanglement inside the fibre and the effect of cosmetic treatments but also to demonstrate and quantify the influence of fibre density on the sorption process. It is thus suggested that, along with examination of the hysteresis, the analysis of sorption kinetics helps reveal a more complete picture of hair moisture management.

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头发吸湿动力学。
目的分析人类头发吸湿的速率过程,以帮助加深对头发结构的了解,并解释头发对水分的反应行为:方法:通过动态蒸汽吸附法(DVS)记录未经处理(原生发)和经过处理(热塑和漂白)的头发以及分离的角质层和皮层的水分吸附等温线:考虑到在吸湿过程中头发纤维也会膨胀,因此可以引入一个随时间变化的速率常数来描述吸湿动力学。通过该模型,可以将发生在角质层和皮质层的吸湿过程明确分开,并提出纤维的两个主要区段中链条缠结的作用。它还可以为纤维在经过不同美容处理后发生的结构变化提供一些提示。我们还注意到样品重量对吸附过程动力学的影响,并对其进行了量化。分析表明,在相对湿度为 30% 左右时,头发内部结构会发生变化,并容纳更多的水分子。这样就可以估算出水分子与活性位点反应的活化能值,结果发现该值与文献中公布的结果非常吻合:对头发吸湿动力学的分析表明,它不仅提供了有关纤维内部链缠结和化妆品处理效果的信息,还证明并量化了纤维密度对吸湿过程的影响。因此,建议在研究滞后现象的同时,对吸附动力学进行分析,有助于更全面地了解头发的水分管理情况。
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来源期刊
CiteScore
4.60
自引率
4.30%
发文量
73
期刊介绍: The Journal publishes original refereed papers, review papers and correspondence in the fields of cosmetic research. It is read by practising cosmetic scientists and dermatologists, as well as specialists in more diverse disciplines that are developing new products which contact the skin, hair, nails or mucous membranes. The aim of the Journal is to present current scientific research, both pure and applied, in: cosmetics, toiletries, perfumery and allied fields. Areas that are of particular interest include: studies in skin physiology and interactions with cosmetic ingredients, innovation in claim substantiation methods (in silico, in vitro, ex vivo, in vivo), human and in vitro safety testing of cosmetic ingredients and products, physical chemistry and technology of emulsion and dispersed systems, theory and application of surfactants, new developments in olfactive research, aerosol technology and selected aspects of analytical chemistry.
期刊最新文献
Estimating hair density with XGBoost. A new ex vivo human skin model for the topographic and biological analysis of cosmetic formulas. Micellar solubility and co-solubilization of fragrance raw materials in sodium dodecyl sulfate and polysorbate 20 surfactant systems. Insights into structural and proteomic alterations related to pH-induced changes and protein deamidation in hair. Moisturizing and antioxidant factors of skin barrier restoring cream with shea butter, silkflo and vitamin E in human keratinocyte cells.
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