Advanced Crystallisation Techniques for Sustainable Battery Recycling and Wastewater Treatment PhD 36 months PHD Programme By Loughborough University |TopUniversities

Programme overview

Main Subject

Engineering - Chemical

Degree

PhD

Study Level

PHD

Study Mode

On Campus

The global market for lithium-ion batteries is projected to exceed $100 billion by 2030, driven by the rapid adoption of electric vehicles and renewable energy storage solutions. Concurrently, efficient wastewater treatment is a multi-billion-dollar industry essential for sustaining clean water resources.
Addressing these high-value markets, this PhD research will develop innovative crystallisation technologies to recover valuable metals from spent batteries and purify contaminated water. The outcomes of this work have immense economic potential, contributing to the circular economy while supporting environmental sustainability and resource efficiency.
The rapid growth of lithium-ion battery markets and the escalating global water crisis necessitate innovative, sustainable solutions for recycling and wastewater treatment. Efficient recovery of critical metals from spent batteries and the purification of industrial wastewater are essential to support environmental sustainability and resource conservation.
Crystallisation techniques present a promising approach to achieve high recovery rates of valuable metals and effective purification processes. This PhD project will focus on developing advanced crystallisation methods tailored to battery recycling and wastewater treatment.

Programme overview

Main Subject

Engineering - Chemical

Degree

PhD

Study Level

PHD

Study Mode

On Campus

The global market for lithium-ion batteries is projected to exceed $100 billion by 2030, driven by the rapid adoption of electric vehicles and renewable energy storage solutions. Concurrently, efficient wastewater treatment is a multi-billion-dollar industry essential for sustaining clean water resources.
Addressing these high-value markets, this PhD research will develop innovative crystallisation technologies to recover valuable metals from spent batteries and purify contaminated water. The outcomes of this work have immense economic potential, contributing to the circular economy while supporting environmental sustainability and resource efficiency.
The rapid growth of lithium-ion battery markets and the escalating global water crisis necessitate innovative, sustainable solutions for recycling and wastewater treatment. Efficient recovery of critical metals from spent batteries and the purification of industrial wastewater are essential to support environmental sustainability and resource conservation.
Crystallisation techniques present a promising approach to achieve high recovery rates of valuable metals and effective purification processes. This PhD project will focus on developing advanced crystallisation methods tailored to battery recycling and wastewater treatment.

Admission Requirements

3.2+
6.5+
92+

10 Feb 2025
3 Years
Oct

International
28,600

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