Yeast-laden Hydrogel Capsules for Scalable Trace Lead Removal from Water

Trace heavy metals are present in water resources globally, jeopardizing ecosystems and human health. Lead is one of the most prevalent and toxic trace pollutants, with numerous incidents of lead-contaminated drinking water across the United States. Conventional treatment processes fail to remove tr...

Full description

Bibliographic Details
Main Authors: Gokhale, Devashish, Stathatou, Patritsia M., Athanasioud, Christos E., Doyle
Other Authors: Massachusetts Institute of Technology. Department of Chemical Engineering
Format: Article
Published: Royal Society of Chemistry 2024
Online Access:https://hdl.handle.net/1721.1/156727
_version_ 1824457983134793728
author Gokhale, Devashish
Stathatou, Patritsia M.
Athanasioud, Christos E.
Doyle
author2 Massachusetts Institute of Technology. Department of Chemical Engineering
author_facet Massachusetts Institute of Technology. Department of Chemical Engineering
Gokhale, Devashish
Stathatou, Patritsia M.
Athanasioud, Christos E.
Doyle
author_sort Gokhale, Devashish
collection MIT
description Trace heavy metals are present in water resources globally, jeopardizing ecosystems and human health. Lead is one of the most prevalent and toxic trace pollutants, with numerous incidents of lead-contaminated drinking water across the United States. Conventional treatment processes fail to remove trace lead from water in a resource-efficient manner. Yeast can effectively remove lead from water via a rapid mass transport process, called biosorption, even when lead concentrations are below 1 part-per-million. Rapid and high lead uptake can enable the application of this inexpensive and abundant biomaterial to water treatment, but scalability is limited by the need to remove any added yeast from water. Here, we scale up a yeast-based treatment process without requiring additional separation steps. Yeast cells are confined within hydrogel capsules that are sufficiently large for easy separation from water by gravitational settling, and sufficiently porous not to limit adsorption capacity and kinetics. The yeast-laden capsules exhibit an uptake capacity of 21 mg g−1, comparable to free yeast under the same conditions, reaching equilibrium within the first 5 minutes of contact. We assess the mechanical robustness of the yeast-laden capsules, and construct a lab-scale proof-of-concept packed-bed biofilter, capable of treating trace lead-contaminated water and meeting USEPA drinking water guidelines while operating continuously for 12 days, to demonstrate the scalability of our approach. By overcoming common separation and structural stability issues that limit scalability of biological water treatment methods, our work offers an innovative and sustainable solution targeting emerging contaminants.
first_indexed 2024-09-23T10:01:03Z
format Article
id mit-1721.1/156727
institution Massachusetts Institute of Technology
last_indexed 2025-02-19T04:18:39Z
publishDate 2024
publisher Royal Society of Chemistry
record_format dspace
spelling mit-1721.1/1567272024-12-23T05:16:46Z Yeast-laden Hydrogel Capsules for Scalable Trace Lead Removal from Water Gokhale, Devashish Stathatou, Patritsia M. Athanasioud, Christos E. Doyle Massachusetts Institute of Technology. Department of Chemical Engineering Massachusetts Institute of Technology. Center for Bits and Atoms Trace heavy metals are present in water resources globally, jeopardizing ecosystems and human health. Lead is one of the most prevalent and toxic trace pollutants, with numerous incidents of lead-contaminated drinking water across the United States. Conventional treatment processes fail to remove trace lead from water in a resource-efficient manner. Yeast can effectively remove lead from water via a rapid mass transport process, called biosorption, even when lead concentrations are below 1 part-per-million. Rapid and high lead uptake can enable the application of this inexpensive and abundant biomaterial to water treatment, but scalability is limited by the need to remove any added yeast from water. Here, we scale up a yeast-based treatment process without requiring additional separation steps. Yeast cells are confined within hydrogel capsules that are sufficiently large for easy separation from water by gravitational settling, and sufficiently porous not to limit adsorption capacity and kinetics. The yeast-laden capsules exhibit an uptake capacity of 21 mg g−1, comparable to free yeast under the same conditions, reaching equilibrium within the first 5 minutes of contact. We assess the mechanical robustness of the yeast-laden capsules, and construct a lab-scale proof-of-concept packed-bed biofilter, capable of treating trace lead-contaminated water and meeting USEPA drinking water guidelines while operating continuously for 12 days, to demonstrate the scalability of our approach. By overcoming common separation and structural stability issues that limit scalability of biological water treatment methods, our work offers an innovative and sustainable solution targeting emerging contaminants. 2024-09-13T16:26:10Z 2024-09-13T16:26:10Z 2024-05-15 Article http://purl.org/eprint/type/JournalArticle 2753-8125 https://hdl.handle.net/1721.1/156727 RSC Sustain., 2024,2, 1761-1772 https://doi.org/10.1039/D4SU00052H RSC Sustainability Creative Commons Attribution-Noncommercial https://creativecommons.org/licenses/by-nc/3.0/ application/pdf Royal Society of Chemistry Royal Society of Chemistry
spellingShingle Gokhale, Devashish
Stathatou, Patritsia M.
Athanasioud, Christos E.
Doyle
Yeast-laden Hydrogel Capsules for Scalable Trace Lead Removal from Water
title Yeast-laden Hydrogel Capsules for Scalable Trace Lead Removal from Water
title_full Yeast-laden Hydrogel Capsules for Scalable Trace Lead Removal from Water
title_fullStr Yeast-laden Hydrogel Capsules for Scalable Trace Lead Removal from Water
title_full_unstemmed Yeast-laden Hydrogel Capsules for Scalable Trace Lead Removal from Water
title_short Yeast-laden Hydrogel Capsules for Scalable Trace Lead Removal from Water
title_sort yeast laden hydrogel capsules for scalable trace lead removal from water
url https://hdl.handle.net/1721.1/156727
work_keys_str_mv AT gokhaledevashish yeastladenhydrogelcapsulesforscalabletraceleadremovalfromwater
AT stathatoupatritsiam yeastladenhydrogelcapsulesforscalabletraceleadremovalfromwater
AT athanasioudchristose yeastladenhydrogelcapsulesforscalabletraceleadremovalfromwater
AT doyle yeastladenhydrogelcapsulesforscalabletraceleadremovalfromwater