Startseite Determination of Surface-Active Characteristics of a Natural Surfactant Extracted from Sapindus Saponaria
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Determination of Surface-Active Characteristics of a Natural Surfactant Extracted from Sapindus Saponaria

  • Aileen Lozsan , Issarly Rivas , Gaudy Rodriguez , Susana Martinez und Miguel Ángel Pérez
Veröffentlicht/Copyright: 3. März 2017
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Abstract

The pulp of the fruit of Sapindus saponaria (soapnut tree) consists mainly of saponin. Surface-active characteristics of this raw saponin such as critical micelle concentration, area per molecule and, hydrophilic-lipophilic balance were investigated; this information is valuable to assess its implementation in different applications of industrial interest. By using surface tension measures and dynamic light scattering studies, the value of critical micelle concentration was found in the range of 0.03 – 0.046 g mL−1. Further increase in the concentration of crude saponin leads to a constant value of surface tension (44 mN m−1). These results were analyzed using the Gibbs adsorption isotherm yielding an estimated value of the area occupied per molecule at the air/water interface of 57.2 Å2. Besides, Griffin method was used to determine the hydrophilic-lipophilic balance value (14.3). Sapindus saponaria extract properties are comparable to that of commercial surfactants, hence it could be used as an economical biosurfactant.

Kurzfassung

Das Fruchtfleisch des Waschnussbaums (Sapindus saponaria) besteht hauptsächlich aus Saponin. Die oberflächenaktiven Eigenschaften dieses Rohsaponins, wie die kritische Mizellenbildungskonzentration, die Fläche pro Molekül und das hydrophilelipophile Gleichgewicht, wurden untersucht, um mit diesen Informationen die industriellen Verwendungsmöglickeiten des Saponins bewerten zu können. Mittels Messungen der Oberflächenspannung und der dynamischen Lichtstreuung wurde die kritische Mizellenbildungskonzentration im Bereich von 0,03 – 0,046 g mL−1 gefunden. Eine weitere Erhöhung der Konzentration an Rohsaponin führt zu einem konstanten Wert der Oberflächenspannung (44 mN m−1). Diese Ergebnisse wurden unter Verwendung der Gibbs-Adsorptionsisotherme analysiert, wodurch sich für den minimalen Platzbedarf des Rohsaponins an der Luft/Wasser-Grenzfläche ein Wert von 57,2 Ų ergab. Außerdem wurde die Griffin-Methode zur Bestimmung des hydrophilen-lipophilen HLB-Wertes (14.3) verwendet. Die Eigenschaften des Sapindus saponaria-Extrakts sind mit denen handelsüblicher Tenside vergleichbar; daher kann er als ökonomisches Biosurfactant verwendet werden.


* Correspondence address, Dr Aileen Lozsán, Instituto Venezolano de Investigaciones Científicas, Centro de Estudios Interdisciplinarios de la Física, Laboratorio de Dispersiones e Interfases, Caracas, 1020A, República Bolivariana de Venezuela, Tel.: +58-2 12-5 04 19 14, Fax: +58-2 12-5 04 19 15, E-Mail:

Dr. Aileen Lozsán is currently Assistant Researcher at the Centro Interdisciplinario de la Física in the Instituto Venezolano de Investigaciones Científicas. Background:

– Dean of Graduate Studies, Instituto Venezolano de Investigaciones Científicas, Venezuela.

– Post-doctoral Fellow, Almería University, Almería, España.

– Ph. D., Universidad Central de Venezuela, Caracas, Venezuela, 2004.

– Lic. Chemistry, Universidad Central de Venezuela, Caracas, Venezuela, 2000.

Her research interests are in the areas of physics and chemistry of nanomaterials, polymeric nanocomposites, nanoemulsions formation and stability.


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Received: 2016-06-24
Accepted: 2017-01-08
Published Online: 2017-03-03
Published in Print: 2017-03-15

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