Aaqil Rifai

Aaqil Rifai

Deakin University

H-index: 12

Oceania-Australia

About Aaqil Rifai

Aaqil Rifai, With an exceptional h-index of 12 and a recent h-index of 12 (since 2020), a distinguished researcher at Deakin University, specializes in the field of 3D Printing, Bone Tissue, Tissue Engineering, Biomaterials.

His recent articles reflect a diverse array of research interests and contributions to the field:

Biomimetic triumvirate nanogel complexes via peptide-polysaccharide-polyphenol self-assembly

Biofabrication of functional bone tissue: defining tissue-engineered scaffolds from nature

Simple complexity: incorporating bioinspired delivery machinery within self-assembled peptide biogels

Waste to high-value products: The performance and potential of carboxymethylcellulose hydrogels via the circular economy

Self-Assembled Peptide Habitats to Model Tumor Metastasis

Liquid metal polymer composite: Flexible, conductive, biocompatible, and antimicrobial scaffold

Hybrid Self‐Assembling Peptide/Gelatin Methacrylate (GelMA) Bioink Blend for Improved Bioprintability and Primary Myoblast Response

Osteoblast cell response on polycrystalline diamond-coated additively manufactured scaffolds

Aaqil Rifai Information

University

Position

Alfred Postdoctoral Research Fellow

Citations(all)

566

Citations(since 2020)

558

Cited By

178

hIndex(all)

12

hIndex(since 2020)

12

i10Index(all)

16

i10Index(since 2020)

16

Email

University Profile Page

Google Scholar

Aaqil Rifai Skills & Research Interests

3D Printing

Bone Tissue

Tissue Engineering

Biomaterials

Top articles of Aaqil Rifai

Biomimetic triumvirate nanogel complexes via peptide-polysaccharide-polyphenol self-assembly

International Journal of Biological Macromolecules

2023/11/1

Biofabrication of functional bone tissue: defining tissue-engineered scaffolds from nature

2023/8/8

Simple complexity: incorporating bioinspired delivery machinery within self-assembled peptide biogels

2023/3/6

Waste to high-value products: The performance and potential of carboxymethylcellulose hydrogels via the circular economy

2023/3

Self-Assembled Peptide Habitats to Model Tumor Metastasis

Gels

2022/5/25

Liquid metal polymer composite: Flexible, conductive, biocompatible, and antimicrobial scaffold

Journal of Biomedical Materials Research Part B: Applied Biomaterials

2022/5

Hybrid Self‐Assembling Peptide/Gelatin Methacrylate (GelMA) Bioink Blend for Improved Bioprintability and Primary Myoblast Response

Advanced NanoBiomed Research

2022/2

Osteoblast cell response on polycrystalline diamond-coated additively manufactured scaffolds

ACS Applied Bio Materials

2021/9/30

Replace and repair: Biomimetic bioprinting for effective muscle engineering

2021/9/1

Diamond in the Rough: Toward Improved Materials for the Bone− Implant Interface

2021/6/25

Aaqil Rifai
Aaqil Rifai

H-Index: 8

Kate Fox
Kate Fox

H-Index: 25

Multifunctional sutures with temperature sensing and infection control

Macromolecular Bioscience

2021/3

Shining a light on the hidden structure of gelatin methacryloyl bioinks using small-angle X-ray scattering (SAXS)

Materials Chemistry Frontiers

2021

Highly uniform polycrystalline diamond coatings of three-dimensional structures

Surface and Coatings Technology

2021

Progress towards 3D-printing diamond for medical implants: A review

Annals of 3D Printed Medicine

2020/11/4

Diamond in medical devices and sensors: An overview of diamond surfaces

Medical Devices and Sensors

2020/9/26

Coatings on metallic implants for biomedical applications

2020/8/20

Polypropylene-nanodiamond composite for hernia mesh

Materials Science and Engineering: C

2020/6/1

Hybrid diamond/carbon fiber microelectrodes enable multimodal electrical/chemical neural interfacing

Biomaterials

2020/2/1

Development of additively manufactured diamond-coated scaffolds for orthopaedic applications

2020/1

See List of Professors in Aaqil Rifai University(Deakin University)

Co-Authors

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