Tuning Microparticle Porosity during Single Needle Electrospraying Synthesis via a Non-Solvent-Based Physicochemical Approach

Porous materials, especially microparticles (MP), are utilized in almost every field of engineering and science, ranging from healthcare materials (drug delivery to tissue engineering) to environmental engineering (biosensing to catalysis). Here, we utilize the single needle electrospraying techniqu...

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Main Authors: Yuan Gao, Yuntong Bai, Ding Zhao, Ming-Wei Chang, Zeeshan Ahmad, Jing-Song Li
Format: Article
Language:English
Published: MDPI AG 2015-12-01
Series:Polymers
Subjects:
Online Access:http://www.mdpi.com/2073-4360/7/12/1531
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spelling doaj-32d676d61d2641898d11ce2029aaf4dc2020-11-24T21:47:40ZengMDPI AGPolymers2073-43602015-12-017122701271010.3390/polym7121531polym7121531Tuning Microparticle Porosity during Single Needle Electrospraying Synthesis via a Non-Solvent-Based Physicochemical ApproachYuan Gao0Yuntong Bai1Ding Zhao2Ming-Wei Chang3Zeeshan Ahmad4Jing-Song Li5College of Biomedical Engineering & Instrument Science, Zhejiang University, Hangzhou 310027, ChinaCollege of Biomedical Engineering & Instrument Science, Zhejiang University, Hangzhou 310027, ChinaCollege of Biomedical Engineering & Instrument Science, Zhejiang University, Hangzhou 310027, ChinaCollege of Biomedical Engineering & Instrument Science, Zhejiang University, Hangzhou 310027, ChinaLeicester School of Pharmacy, De Montfort University, The Gateway, Leicester LE1 9BH, UKCollege of Biomedical Engineering & Instrument Science, Zhejiang University, Hangzhou 310027, ChinaPorous materials, especially microparticles (MP), are utilized in almost every field of engineering and science, ranging from healthcare materials (drug delivery to tissue engineering) to environmental engineering (biosensing to catalysis). Here, we utilize the single needle electrospraying technique (as opposed to complex systems currently in development) to prepare a variety of poly(ε-caprolactone) (PCL) MPs with diverse surface morphologies (variation in pore size from 220 nm to 1.35 µm) and architectural features (e.g., ellipsoidal, surface lamellar, Janus lotus seedpods and spherical). This is achieved by using an unconventional approach (exploiting physicochemical properties of a series of non-solvents as the collection media) via a single step. Sub-micron pores presented on MPs were visualized by electron microscopy (demonstrating a mean MP size range of 7–20 μm). The present approach enables modulation in morphology and size requirements for specific applications (e.g., pulmonary delivery, biological scaffolds, multi-stage drug delivery and biomaterial topography enhancement). Differences in static water contact angles were observed between smooth and porous MP-coated surfaces. This reflects the hydrophilic/hydrophobic properties of these materials.http://www.mdpi.com/2073-4360/7/12/1531microparticlesporousshapepoly(ε-caprolactone)tuned
collection DOAJ
language English
format Article
sources DOAJ
author Yuan Gao
Yuntong Bai
Ding Zhao
Ming-Wei Chang
Zeeshan Ahmad
Jing-Song Li
spellingShingle Yuan Gao
Yuntong Bai
Ding Zhao
Ming-Wei Chang
Zeeshan Ahmad
Jing-Song Li
Tuning Microparticle Porosity during Single Needle Electrospraying Synthesis via a Non-Solvent-Based Physicochemical Approach
Polymers
microparticles
porous
shape
poly(ε-caprolactone)
tuned
author_facet Yuan Gao
Yuntong Bai
Ding Zhao
Ming-Wei Chang
Zeeshan Ahmad
Jing-Song Li
author_sort Yuan Gao
title Tuning Microparticle Porosity during Single Needle Electrospraying Synthesis via a Non-Solvent-Based Physicochemical Approach
title_short Tuning Microparticle Porosity during Single Needle Electrospraying Synthesis via a Non-Solvent-Based Physicochemical Approach
title_full Tuning Microparticle Porosity during Single Needle Electrospraying Synthesis via a Non-Solvent-Based Physicochemical Approach
title_fullStr Tuning Microparticle Porosity during Single Needle Electrospraying Synthesis via a Non-Solvent-Based Physicochemical Approach
title_full_unstemmed Tuning Microparticle Porosity during Single Needle Electrospraying Synthesis via a Non-Solvent-Based Physicochemical Approach
title_sort tuning microparticle porosity during single needle electrospraying synthesis via a non-solvent-based physicochemical approach
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2015-12-01
description Porous materials, especially microparticles (MP), are utilized in almost every field of engineering and science, ranging from healthcare materials (drug delivery to tissue engineering) to environmental engineering (biosensing to catalysis). Here, we utilize the single needle electrospraying technique (as opposed to complex systems currently in development) to prepare a variety of poly(ε-caprolactone) (PCL) MPs with diverse surface morphologies (variation in pore size from 220 nm to 1.35 µm) and architectural features (e.g., ellipsoidal, surface lamellar, Janus lotus seedpods and spherical). This is achieved by using an unconventional approach (exploiting physicochemical properties of a series of non-solvents as the collection media) via a single step. Sub-micron pores presented on MPs were visualized by electron microscopy (demonstrating a mean MP size range of 7–20 μm). The present approach enables modulation in morphology and size requirements for specific applications (e.g., pulmonary delivery, biological scaffolds, multi-stage drug delivery and biomaterial topography enhancement). Differences in static water contact angles were observed between smooth and porous MP-coated surfaces. This reflects the hydrophilic/hydrophobic properties of these materials.
topic microparticles
porous
shape
poly(ε-caprolactone)
tuned
url http://www.mdpi.com/2073-4360/7/12/1531
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AT yuntongbai tuningmicroparticleporosityduringsingleneedleelectrosprayingsynthesisviaanonsolventbasedphysicochemicalapproach
AT dingzhao tuningmicroparticleporosityduringsingleneedleelectrosprayingsynthesisviaanonsolventbasedphysicochemicalapproach
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AT zeeshanahmad tuningmicroparticleporosityduringsingleneedleelectrosprayingsynthesisviaanonsolventbasedphysicochemicalapproach
AT jingsongli tuningmicroparticleporosityduringsingleneedleelectrosprayingsynthesisviaanonsolventbasedphysicochemicalapproach
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