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Muhammad Yousaf

Researcher at Peking University

Publications -  99
Citations -  2634

Muhammad Yousaf is an academic researcher from Peking University. The author has contributed to research in topics: Medicine & Biology. The author has an hindex of 19, co-authored 69 publications receiving 1664 citations. Previous affiliations of Muhammad Yousaf include University of the Punjab.

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Hyperporous Sponge Interconnected by Hierarchical Carbon Nanotubes as a High-Performance Potassium-Ion Battery Anode

TL;DR: It is discovered that the inner dense CNT serves as a robust skeleton, and collectively, the outer loose-CNT is beneficial for K-ion accommodation; meanwhile the hyperporous sponge facilitates reaction kinetics and offers stable surface capacitive behavior.
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Multifunctional Fe5 C2 nanoparticles: a targeted theranostic platform for magnetic resonance imaging and photoacoustic tomography-guided photothermal therapy.

TL;DR: Fe5 C2 NPs exhibit a high contrast in magnetic resonance imaging (MRI), superior photoacoustic tomography improvements, and efficient photothermal therapy (PTT) due to their unique core/shell structure, with a magnetic core and carbon shell.
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A 3D Trilayered CNT/MoSe2/C Heterostructure with an Expanded MoSe2 Interlayer Spacing for an Efficient Sodium Storage

TL;DR: In this article, a 3D trilayer design with embedded transition metal dichalcogenides (TMDCs) is proposed to enhance the gravimetric and areal capacities.
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Ultrafast Sodium/Potassium-Ion Intercalation into Hierarchically Porous Thin Carbon Shells.

TL;DR: P porous S and N co-doped thin carbon with hollow structure and thin shell-wall with shell-like morphology for enhanced Na+ /K+ storage is presented, leading to limited compromise over charge storage at high charge/discharge rates.
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Polyurethane-based flexible and conductive phase change composites for energy conversion and storage

TL;DR: In this article, a polyethylene glycol (PEG) based solid-solid phase change composites (PCCs) are integrated into carbon nanotube sponge (CNTS) to fabricate a dual form-stable, flexible and highly conductive PCC.