Publication:

NanoSafe III: A User Friendly Safety Management System for Nanomaterials in Laboratories and Small Facilities

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2024-08-05T04:05:58Z

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289795

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OHS-HT

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SB

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EPFL

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136548

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266263

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197203

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105841

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10177

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Karlen, Stéphane

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Meyer, Thierry

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datacite.rights

openaccess

dc.contributor.author

Buitrago, Elina

dc.contributor.author

Novello, Anna Maria

dc.contributor.author

Fink, Alke

dc.contributor.author

Riediker Michael

dc.contributor.author

Rothen-Rutishauser Barbara

dc.contributor.author

Meyer, Thierry

dc.date.accessioned

2021-11-03T14:23:32

dc.date.available

2021-11-03T14:23:32

dc.date.created

2021-11-03

dc.date.issued

2021

dc.date.modified

2025-01-23T17:06:41.518980Z

dc.description.abstract

Research in nanoscience continues to bring forward a steady stream of new nanomaterials and processes that are being developed and marketed. While scientific committees and expert groups deal with the harmonization of terminology and legal challenges, risk assessors in research labs continue to have to deal with the gap between regulations and rapidly developing information. The risk assessment of nanomaterial processes is currently slow and tedious because it is performed on a material-by-material basis. Safety data sheets are rarely available for (new) nanomaterials, and even when they are, they often lack nano-specific information. Exposure estimations or measurements are difficult to perform and require sophisticated and expensive equipment and personal expertise. The use of banding-based risk assessment tools for laboratory environments is an efficient way to evaluate the occupational risks associated with nanomaterials. Herein, we present an updated version of our risk assessment tool for working with nanomaterials based on a three-step control banding approach and the precautionary principle. The first step is to determine the hazard band of the nanomaterial. A decision tree allows the assignment of the material to one of three bands based on known or expected effects on human health. In the second step, the work exposure is evaluated and the processes are classified into three “nano” levels for each specific hazard band. The work exposure is estimated using a laboratory exposure model. The result of this calculation in combination with recommended occupational exposure limits (rOEL) for nanomaterials and an additional safety factor gives the final “nano” level. Finally, we update the technical, organizational, and personal protective measures to allow nanomaterial processes to be established in research environments.

dc.description.sponsorship

GSCP

dc.identifier.doi

10.3390/nano11102768

dc.identifier.uri

https://infoscience.epfl.ch/handle/20.500.14299/182683

dc.relation

https://infoscience.epfl.ch/record/289795/files/nanomaterials-11-02768-v2 (2).pdf

dc.relation.journal

Nanomaterials

dc.subject

engineered nanomaterials

dc.subject

risk management

dc.subject

nanosafety

dc.subject

occupational exposure

dc.subject

control banding

dc.subject

safe handling practices

dc.title

NanoSafe III: A User Friendly Safety Management System for Nanomaterials in Laboratories and Small Facilities

dc.type

text::journal::journal article::research article

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Publication

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Publisher's version

dspace.legacy.oai-identifier

oai:infoscience.epfl.ch:289795

epfl.curator.email

jorge.rodriguesdematos@epfl.ch

epfl.lastmodified.email

jorge.rodriguesdematos@epfl.ch

epfl.legacy.itemtype

Journal Articles

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ARTICLE

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SB

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OpenAIREv4

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fulltext

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article

epfl.peerreviewed

REVIEWED

epfl.publication.version

http://purl.org/coar/version/c_970fb48d4fbd8a85

epfl.writtenAt

EPFL

oaire.citation.articlenumber

2768

oaire.citation.issue

10

oaire.citation.volume

11

oaire.licenseCondition

CC BY

oaire.version

http://purl.org/coar/version/c_970fb48d4fbd8a85

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