Multiscale Thermomechanical Analysis of Phase Change Phenomena in Polymer-Based Solvents

This project aims to improve how polymer-based solvents are modeled during freezing and solidification processes that are critical to modern semiconductor manufacturing. Building on prior experimental and theoretical studies (i.e., the collaborative work from participated institutions), the project will develop an accurate and reliable computational framework that captures how heat transfer and mechanical stresses interact […]

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Synthesis and Isolation of terminal carboxyl and pyridyl metal-organic cages

The objective of this project is to synthesize and isolate new heteroleptic metal-organic cages (MOCs) to function as reaction vessels for a series of different applications. The MOCs will consist of two triarylborane ligands and two triarylamine ligands for a ligand ratio of 1:1. Two separate cages will be explored with one consisting of ligands […]

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Understanding Green Bilayer Dielectrics through Advanced Characterization: A Canada–Finland Collaboration

This project focuses on developing environmentally friendly electronic materials by combining biodegradable polymers with semiconducting materials to develop degradable, flexible, and high-performance organic electronic devices. The work aims to improve device stability and sustainability, contributing to the advancement of green electronics. Through collaboration between participating institutions, the project will promote knowledge exchange in materials design, […]

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Improving the flame resistance of lyocell fibres using nanoparticles

Worldwide demand for man-made cellulosic fibres is increasing as availability of cotton fibre is limited. The regenerated cellulose lyocell process offers large advantages over other processes in terms of environmental and social impacts. However, cellulose is flammable. Current strategies to prepare flame-resistant (FR) regenerated cellulose fibre involve the incorporation of a fine powder of organophosphate […]

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Automation, Data Processing, and Validation of Spectral Measurements in Molecular Degradation Research

This project develops automated pipelines for processing Raman and UV-Vis spectral data collected during studies of molecular degradation. The focus is on improving reproducibility, accuracy, and efficiency in monitoring antioxidants such as BHT and PAN derivatives. The workflows will perform spectral baseline correction, peak fitting, smoothing, and feature extraction, enabling rapid interpretation of large experimental […]

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Real-Time Monitoring of Antioxidant Degradation in Lubricants

This project aims to improve how we monitor the condition of lubricating oils used in engines, turbines, and other critical industrial systems. These oils rely on antioxidants to prevent chemical breakdown. When the antioxidants degrade, it can cause equipment damage, costly downtime, and environmental harm. To address this challenge, researchers at Carleton University, in collaboration […]

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Application of functionalised lignin nanoparticles as Pickering emulsifier in paper-coating

We are extremely excited about the collaboration between three leading research institutes-Lakehead University, KTH and RISE- driving innovation, skill development and shared expertise, all focused on transforming waste into value added products. We are pioneering a new approach for applying lignin, a biobased material in formulating a biodegradable, green and sustainable emulsifier. Lignin is a […]

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Efficient Computational Strategies for Calculating Orbital Energies Using pCCD-Based Methods

This project focuses on advancing computational methods for predicting ionization potentials (IPs) and electron affinities (EAs) of organic molecules, with a specific application to organic solar cells (OSCs). By leveraging Koopmans’ theorem within the orbital-optimized pair-coupled cluster doubles (oo-pCCD) framework, the project aims to efficiently compute these key electronic properties without costly gradient calculations. A […]

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siRNA Therapy of Blood Cancer – Preclinical Efficacy & Safety Evaluation

Nucleic acids such as DNA and RNA offer exceptional opportunities to fight against infectious and genetic diseases. To use nucleic acids effectively in a clinical setting, one needs to use effective delivery vehicles that can deliver the nucleic acids into the diseased cells. This project will develop effective delivery systems for this purpose. The delivery […]

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Development of a nanonewton force sensor for in-situ characterization of nanomaterials

Nanomaterials are the fundamental building blocks of nanotechnology. Despite the advances in nanomaterial synthesis, no reliable technique exists to characterize their physical properties. The key challenge lies with the lack of accurate force and displacement feedback. To tackle the problem, leading researchers from University of Toronto and from Toronto Nano Instrumentation (TNI) Inc. are working […]

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Development of Nanoparticle and Encapsulation Technology as Delivery System for Polysaccharides from Ginseng

Ginseng is a medicinal plant widely used for the treatment of various conditions, and there are two major species: Panax ginseng (Asian ginseng) and Panax quinquefolius (American ginseng). The medicinal properties of ginseng have been attributed to two main classes of chemical compounds: ginsenosides and polysaccharides (PS). We have recently developed an encapsulated PS nanoparticles […]

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