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Smart Air–Water Interfaces with Arylazopyrazole Surfactants and TheirRole in Photoresponsive Aqueous Foam

机译:芳基吡唑表面活性剂及其与空气的智能水界面在光敏水性泡沫中的作用

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摘要

A new light-switchable azo-surfactant arylazopyrazole tetraethylene glycol carboxylic acid (AAP-E4) was used as a molecular building block to functionalize macroscopic foams. AAP-E4 was studied in the bulk solution with UV/vis spectroscopy and at the interface with sum-frequency generation (SFG) as well as tensiometry. Additional foaming experiments were performed with a dynamic foam analyzer to study the role of AAP-E4 surfactants at the ubiquitous air–water interface as well as within macroscopic foam. In the bulk, it is possible to switch the AAP-E4 surfactant reversibly from trans to cis configurations and vice versa using 380 nm UV and 520 nm green light, respectively. At the interface, we demonstrate the excellent switching ability of AAP-E4 surfactants and a substantial modification of the surface tension. In addition, we show that the response of the interface is strongly influenced by lateral electrostatic interactions, which can be tuned by the charging state of AAP-E4. Consequently, the electrostatic disjoining pressure and thus the foam stability are highly dependent on the bulkpH and the charging state of the interface. For that reason, we havestudied both the surface net charge (SFG) and the surface excess (tensiometry)as important parameters that determine foam stability in this systemand show that neutral pH conditions lead to the optimal compromisebetween switching ability, surface excess, and surface charging. Measurementson the foam stability demonstrated that foams under irradiation withgreen light are more stable than foams irradiated with UV light.
机译:一种新型的光可开关的偶氮表面活性剂芳基偶氮吡唑四甘醇羧酸(AAP-E4)作为分子构件来官能化宏观泡沫。 AAP-E4在UV / vis光谱的本体溶液中以及与和频产生(SFG)以及张力测量的界面上进行了研究。使用动态泡沫分析仪进行了其他发泡实验,以研究AAP-E4表面活性剂在无处不在的空气-水界面以及宏观泡沫中的作用。大体上,可以分别使用380 nm的紫外线和520 nm的绿光将AAP-E4表面活性剂可逆地从反式转换为顺式构型,反之亦然。在界面上,我们证明了AAP-E4表面活性剂的出色转换能力和表面张力的显着改变。此外,我们表明界面的响应受横向静电相互作用的强烈影响,可以通过AAP-E4的充电状态对其进行调整。因此,静电解体压力和泡沫稳定性在很大程度上取决于体积pH和界面的充电状态。因此,我们有研究了表面净电荷(SFG)和表面过量(张力法)作为决定该系统泡沫稳定性的重要参数并表明中性pH条件导致最佳折衷在开关能力,表面过剩和表面带电之间。测量泡沫稳定性的研究表明,在绿光比用紫外线照射的泡沫更稳定。

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