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Dive into the research topics where Abdelrahman Elbaz is active.

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Featured researches published by Abdelrahman Elbaz.


Journal of Materials Chemistry C | 2013

Photonic crystal for gas sensing

Hua Xu; Pin Wu; Chu Zhu; Abdelrahman Elbaz; Zhongze Gu

Photonic crystal (PhCs) based sensing technology has gained more and more attention because of its obvious advantages in sensitivity, stability, security, miniaturisation, portability, on-line use and remote monitoring. Many PhC sensors have been proposed based on their novel structure and unique optical properties. In this review, we will describe the recent progress in the use of natural and artificial PhC materials for gas/vapor sensing, including Morpho butterfly wings and their mimicry of nanostructures, porous silicon, Bragg stacks, colloidal crystals and inverse opal. Here we will discuss the PhCs with different structures and their respective gas sensing properties, focusing on the description of the functional structure of the PhCs materials and their sensing mechanisms.


Advanced Materials | 2018

3D Printing of Bioinspired Liquid Superrepellent Structures

Xiaojiang Liu; Hongcheng Gu; Min Wang; Xin Du; Bingbing Gao; Abdelrahman Elbaz; Liangdong Sun; Julong Liao; Pengfeng Xiao; Zhongze Gu

Bioinspired re-entrant structures have been proved to be effective in achieving liquid superrepellence (including anti-penetration, anti-adhesion, and anti-spreading). However, except for a few reports relying on isotropic etching of silicon wafers, most fluorination-dependent surfaces are still unable to repel liquids with extreme low surface energy (i.e., γ < 15 mN m-1 ), especially those fluorinated solvents. Herein, triply re-entrant structures, possessing superrepellence to water (with surface tension γ of 72.8 mN m-1 ) and various organic liquids (γ = 12.0-27.1 mN m-1 ), are fabricated via two-photon polymerization based 3D printing technology. Such structures can be constructed both on rigid and flexible substrates, and the liquid superrepellent properties can be kept even after oxygen plasma treatment. Based on the prepared triply re-entrant structures, micro open capillaries are constructed on them to realize directional liquid spreading, which may be applied in microfluidic platforms and lab-on-a-chip applications. The fabricated arrays can also find potential applications in electronic devices, gas sensors, microchemical/physical reactors, high-throughput biological sensors, and optical displays.


Polymers | 2017

Chitin-Based Anisotropic Nanostructures of Butterfly Wings for Regulating Cells Orientation

Abdelrahman Elbaz; Jie Lu; Bingbing Gao; Fuyin Zheng; Zhongde Mu; Yuanjin Zhao; Zhongze Gu

In recent years, multiple types of substrates have been applied for regulating cell orientation. Among them, surface topography patterns with grooves or ridges have been widely utilizing for cell culturing. However, this construction is still complicated, low cost-effective and exhibits some technological limitations with either “top-down” or “bottom-up” approaches. Here, a simple and green method was developed by utilizing butterfly wings (Morpho menelaus, Papilio ulysses telegonus and Ornithoptera croesus lydius) with natural anisotropic nanostructures to generate cell alignment. A two-step chemical treatment was proposed to achieve more hydrophilic butterfly wings preceding cell culturing. Furthermore, calcein acetoxymethyl ester (Calcein-AM) staining and Methylthiazolyldiphenyl-tetrazolium bromide (MTT) assay results demonstrated the appropriate viability of NIH-3T3 fibroblast cells on those butterfly wings. Moreover, the cells displayed a high degree of alignment in each specimen of these wings. We anticipate that those originating from natural butterfly wings will pose important applications for tissue engineering.


Biomimetics | 2018

Hepatocyte Aggregate Formation on Chitin-Based Anisotropic Microstructures of Butterfly Wings

Abdelrahman Elbaz; Bingbing Gao; Zhenzhu He; Zhongze Gu

Scaffold nanotopography plays the most significant role in the mimicry of the in vivo microenvironment of the hepatocytes. Several attempts have been made to develop methods and substrates suited to growing hepatocytes into aggregates. Functional biomaterials, particularly biodegradable polymers, have been used in several studies aimed to develop improved scaffolds with ordered geometry and nanofibrous architecture for tissue engineering. However, there are still some limitation in their fabrication: it is not cost-efficient, is time-consuming, and exhibits some technological complications. The synthetic scaffolds are usually non-biodegradable and can be non-biocompatible compared to the naturally derived biomaterials. Here, we utilized a simple, cost-effective, and green method with two-step chemical treatment to get more selected hydrophilic butterfly wings from Morpho menelaus, Papilio ulysses telegonus, and Ornithoptera croesus lydius as a chitin-based natural scaffolds to growing hepatocyte aggregates. We established a three-dimensional (3D) in vitro model for culture of HepG2 cells and aggregate formation that maintained the hepatocytes function on these natural anisotropic microstructures. Cells cultured on these substrates show higher viability than those cultured on a two-dimensional (2D) culture plate. Methylthiazolyldiphenyl-tetrazolium bromide (MTT) assay results revealed excellent viability of HepG2 cells on P. u. telegonus wings (fibrous area). The results also demonstrated appropriate cell activity, cell retention, and stable and functional expression in terms of albumin secretion and urea synthesis activity compared to the 2D monolayer culture of hepatocytes on the culture dish surface. With a slightly different degree, the other substrates also shown similar results. We anticipate that these natural anisotropic, biodegradable, and biocompatible substrates can maintain long-term hepatic culture as an in vitro 3D model for potential therapeutic applications and regenerative tissue applications. The model presented here provides a feasible alternative to the synthetic scaffolds and is expected to be more reliable for 3D organotypic liver culture models based on such scaffolds.


Advanced Healthcare Materials | 2018

Disposable Morpho menelaus Based Flexible Microfluidic and Electronic Sensor for the Diagnosis of Neurodegenerative Disease

Zhenzhu He; Abdelrahman Elbaz; Bingbing Gao; Junning Zhang; Enben Su; Zhongze Gu

Rapid early disease prevention or precise diagnosis is almost impossible in low-resource settings. Natural ordered structures in nature have great potential for the development of ultrasensitive biosensors. Here, motivated by the unique structures and extraordinary functionalities of ordered structures in nature, a biosensor based on butterfly wings is presented. In this study, a flexible Morpho menelaus (M. menelaus) based wearable sensor is integrated with a microfluidic system and electronic networks to facilitate the diagnosis of neurodegenerative disease (ND). In the microfluidic section, the structural characteristics of the M. menelaus wings up layer are combined with SiO2 nanoparticles to form a heterostructure. The fluorescent enhancement property of the heterostructure is used to increase the fluorescent intensity for multiplex detection of two proteins: IgG and AD7c-NTP. For the electronic section, conductive ink is blade-coated on the under layer of wings for measuring resistance change rate to obtain the frequency of static tremors of ND patients. The disposable M. menelaus based flexible microfluidic and electronic sensor enables biochemical-physiological hybrid monitoring of ND. The sensor is also amenable to a variety of applications, such as comprehensive personal healthcare and human-machine interaction.


Bio-Design and Manufacturing | 2018

Recent biomedical applications of bio-sourced materials

Abdelrahman Elbaz; Zhenzhu He; Bingbing Gao; Junjie Chi; Enben Su; Dagan Zhang; Songqin Liu; Hua Xu; Hong Liu; Zhongze Gu


Advanced materials and technologies | 2018

Bioinspired Kirigami Fish‐Based Highly Stretched Wearable Biosensor for Human Biochemical–Physiological Hybrid Monitoring

Bingbing Gao; Abdelrahman Elbaz; Zhenzhu He; Zhuoying Xie; Hua Xu; Songqin Liu; Enben Su; Hong Liu; Zhongze Gu


Journal of The Taiwan Institute of Chemical Engineers | 2018

Biocompatibility polyelectrolyte coating with water-enabled self-healing ability

Lijuan Wang; Long Wang; Lanlan Zang; Zhiqiang Wang; Abdelrahman Elbaz; Qianqian Zou; Quanping Su; Yanxi Zhu; Fengyuan Che


Analyst | 2018

A bio-inspired photonic nitrocellulose array for ultrasensitive assays of single nucleic acids

Junjie Chi; Biao Ma; Xing Dong; Bingbing Gao; Abdelrahman Elbaz; Hong Liu; Zhongze Gu


Advanced Materials | 2018

Liquid Superrepellents: 3D Printing of Bioinspired Liquid Superrepellent Structures (Adv. Mater. 22/2018)

Xiaojiang Liu; Hongcheng Gu; Min Wang; Xin Du; Bingbing Gao; Abdelrahman Elbaz; Liangdong Sun; Julong Liao; Pengfeng Xiao; Zhongze Gu

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Hong Liu

Southeast University

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Hua Xu

Southeast University

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