Related Experiment Video
Updated: Aug 26, 2026

A Facile and Efficient Approach for the Production of Reversible Disulfide Cross-linked Micelles
Published on: December 23, 2016
Nb2C-based MXenes for controlled cyclophosphamide delivery: role of surface functionalization and sulfur doping
Madhumitha Govindan1, Rooban Petchimuthu1, Anitha Baskaran1
1Department of Physics and Nanotechnology, Computational Materials Science and Nano Devices Simulation Laboratory, College of Engineering and Technology, SRM Institute of Science and Technology Kattankulathur 603203 TamilNadu India jananik@srmist.edu.in hariharr@srmist.edu.in.
None:
A systematic first-principles study was performed to explore the pristine Nb2C, Nb2CO2, and S-doped Nb2CO2 MXenes as potential nanocarriers for cyclophosphamide (CYP) drug delivery in breast cancer therapy. Density functional theory calculations were employed to examine the structural stability, electronic properties, adsorption behaviour and solvation effects of all systems. Cohesive energy calculations and ab initio molecular dynamics simulations confirmed the structural and thermal stability of all nanocarriers at 298 K. Electronic structure analysis revealed that the metallic nature of the MXenes is preserved after functionalization, sulfur doping and drug adsorption. Adsorption studies showed that pristine Nb2C exhibits strong interaction with CYP, with an adsorption energy of -1.02 eV, indicating chemisorption. In contrast, Nb2CO2 displayed relatively weak physisorption. Sulfur doping effectively modulates the adsorption strength, and the 4S-doped Nb2CO2 configuration exhibited -0.85 eV of adsorption energy with reduced charge transfer, suggesting a favourable balance between drug loading and release. Implicit solvation calculations showed that both isolated and drug-loaded systems are stable under aqueous conditions, with solvation energies of up to -0.36 and -0.74 eV, respectively. Recovery time analysis at physiological temperature (310 K) further confirms the suitability of these MXenes for drug release. Among all investigated nanocarriers, 4S-doped Nb2CO2 MXene is emerging as a candidate for CYP drug delivery applications.
Related Concept Videos
Site-Targeted Drug Delivery Systems: Polymeric Carriers
Modified-Release Drug Delivery Systems: Site-Targeted

