Formation of Three‐Dimensional Polysuccinimide Electrospun Fiber Meshes Induced by the Combination of CaCl2 and Humidity

Author:

Juhász Ákos György1ORCID,Nanys Monika1,Pinke Balázs2ORCID,Fadel Alexandre3,Godzierz Marcin4,Juriga‐Tóth Krisztina1ORCID,Molnár Kolos256,Juriga Dávid1ORCID,Jedlovszky‐Hajdú Angéla1ORCID

Affiliation:

1. Laboratory of Nanochemistry Department of Biophysics and Radiation Biology Semmelweis University Nagyvárad tér 4. Budapest H‐1089 Hungary

2. Department of Polymer Engineering Budapest University of Technology and Economics Műegyetem rkp. 3 Budapest H‐1111 Hungary

3. UMR 8207, UMET—Unité Matériaux et Transformations University Lille CNRS, INRAE, Centrale Lille Lille F‐59000 France

4. Centre of Polymer and Carbon Materials Polish Academy of Sciences M. Curie‐Skłodowskiej 34 Str Zabrze 41‐819 Poland

5. HUN‐REN–BME Research Group for Composite Science and Technology Műegyetem rkp. 3 Budapest H‐1111 Hungary

6. MTA‐BME Lendület Sustainable Polymers Research Group Műegyetem rkp. 3 Budapest H‐1111 Hungary

Abstract

AbstractEven though electrospinning is getting more and more attention, the preparation of 3D nanofibrous meshes is still a big challenge that limits the application of electrospun materials, especially in tissue engineering. To overcome this problem, several solutions are introduced but most of them focus on the postprocessing of the electrospun meshes. This paper presents a straightforward novel method that utilizes the joint effect of the addition of CaCl2 and the relative environmental humidity (RH), which can induce the random 3D formation of polysuccinimide (PSI) electrospun fibers with different such as wrinkled or ribbon‐like structures. Although the effect of humidity and inorganic salt additives on the micro and macrostructure of electrospun fibers is known, the connection between the two in this manner has never been presented. To investigate the effect, fibers with different PSI and CaCl2 concentrations at different humidity RH levels are prepared, and their microstructure is visualized with high‐resolution scanning electron microscopy (SEM). To reveal the nature of the interaction between the polymer and the CaCl2, Fourier‐transformed infrared (FTIR), X‐ray diffraction (XRD), and thermogravimetry (TGA) measurements are carried out and 3D nanofibrous structures are obtained.

Funder

Nemzeti Kutatási, Fejlesztési és Innovaciós Alap

Semmelweis Egyetem

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Organic Chemistry

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