Stanford Root

Schedule

Stanford Root

Schedule

CEE 271C

Electrochemical Water Treatment: Materials and Processes (CHEMENG 175X, CHEMENG 475)

UNITS:3
GRADING:Letter or Credit/No Credit
LEVEL:Graduate
GER:—

Humans generate teraliters of wastewater every day, of which CEE 80% is discharged without treatment. While societies struggle to manage waste, natural environmental cycles reuse any 'waste' product as starting material elsewhere. Polluted water threatens aquatic ecosystems and exacerbates water scarcity, which a majority of people globally will experience by 2030. Discharging wastewater is an unaffordable luxury for a world facing climate change and resource scarcity. Reframing waste streams as sources of raw materials motivates the design of selective materials and processes capable of converting water pollutants into valuable products. Electrochemical separations exhibit several benefits for wastewater treatment, including their modularity, substitution of chemical inputs with electricity, and fine-tune control over interfacial phenomena. In this course, students will learn the fundamental principles and design rules for electrochemical materials and processes for next-generation water treatment. Assignments will focus on critically reviewing electrochemical water treatment literature, evaluating applications for removing pollutants and creating products from aqueous streams, and contrasting various approaches to address water pollution. Throughout the course, students will build towards final projects proposing novel materials or processes for electrochemical water treatment.

Syllabus for selected term:
View Autumn 2026 Syllabus

Sections

1 Term
Lecture 1Open
ID: 25435
0 / 15 enrolled
DAYS:Tuesday, Thursday
TIME:12 PM – 1:20 PM
LOCATION:Skilling Auditorium
INSTRUCTOR:
Tarpeh, William
3units

CEE 271C: Electrochemical Water Treatment: Materials and Processes (CHEMENG 175X, CHEMENG 475)

3 units · Letter or Credit/No Credit

Humans generate teraliters of wastewater every day, of which 80% is discharged without treatment. While societies struggle to manage waste, natural environmental cycles reuse any 'waste' product as starting material elsewhere. Polluted water threatens aquatic ecosystems and exacerbates water scarcity, which a majority of people globally will experience by 2030. Discharging wastewater is an unaffordable luxury for a world facing climate change and resource scarcity. Reframing waste streams as sources of raw materials motivates the design of selective materials and processes capable of converting water pollutants into valuable products. Electrochemical separations exhibit several benefits for wastewater treatment, including their modularity, substitution of chemical inputs with electricity, and fine-tune control over interfacial phenomena. In this course, students will learn the fundamental principles and design rules for electrochemical materials and processes for next-generation water treatment. Assignments will focus on critically reviewing electrochemical water treatment literature, evaluating applications for removing pollutants and creating products from aqueous streams, and contrasting various approaches to address water pollution. Throughout the course, students will build towards final projects proposing novel materials or processes for electrochemical water treatment.

Offered in Autumn 2026 at Stanford University.

Autumn 2026 sections

  • Lecture — Tuesday Thursday 12:00 PM – 1:20 PM — Skilling Auditorium — Tarpeh, William (Graduate)

More CEE courses

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  • CEE 269: Environmental Engineering Seminar
  • CEE 270: Movement and Fate of Organic Contaminants in Waters
  • CEE 270F: Fundamentals of Applied Research Design
  • CEE 271A: Physical and Chemical Treatment Processes
  • CEE 271B: Environmental Biotechnology
  • CEE 272: Coastal Contaminants
  • CEE 272M: Sustainable Mobility Seminar
  • CEE 272R: Engineering Future Electricity Systems (ENERGY 272R)
  • CEE 272T: SmartGrids and Advanced Power Systems Seminar (EE 292T)
  • CEE 273B: The Business of Water (EBS 273)
  • CEE 273M: Desalination for a Circular Water Economy

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