VAMAS TWA2 interlaboratory comparison: Surface analysis of TiO2 nanoparticles using ToF-SIMS

Author:

Bennet Francesca12ORCID,Opitz Robert1ORCID,Ghoreishi Narges1ORCID,Plate Kristina1ORCID,Barnes Jean-Paul3ORCID,Bellew Allen4ORCID,Belu Anna5ORCID,Ceccone Giacomo6ORCID,de Vito Eric7ORCID,Delcorte Arnaud8,Franquet Alexis9ORCID,Fumagalli Francesco6,Gilliland Douglas6ORCID,Jungnickel Harald1ORCID,Lee Tae Geol10,Poleunis Claude8ORCID,Rading Derk11,Shon Hyun Kyong10ORCID,Spampinato Valentina19ORCID,Son Jin Gyeong10ORCID,Wang Fuyi1ORCID,Wang Yung-Chen Andrew5,Zhao Yao12,Roloff Alexander1ORCID,Tentschert Jutta1,Radnik Jörg2ORCID

Affiliation:

1. Federal Institute for Risk Assessment 1 , Max-Dohrn-Strasse 8-10, Berlin 10589, Germany

2. Federal Institute for Materials Research and Testing 2 , Unter den Eichen 44-46, Berlin 12203, Germany

3. Univ. Grenoble Alpes, CEA, Leti 3 , Grenoble F-38000, France

4. Ionoptika Ltd. 4 , Unit B6, Millbrook Close, Chandler’s Ford SO53 4BZ, United Kingdom

5. Medtronic Corporate Science and Technology 5 , 710 Medtronic Parkway, Mailstop LT240, Minneapolis, Minnesota 55432

6. European Commission 6 , Joint research Centre, Ispra, Italy

7. Univ. Grenoble Alpes, CEA, Liten 7 , Grenoble F-38000, France

8. Institute of Condensed Matter and Nanosciences - Bio & Soft Matter, Surface Characterisation, Université catholique de Louvain 8 , Place Louis Pasteur, 1 bte L4.01.10, Louvain-la-Neuve B-1348, Belgium

9. IMEC 9 , Kapeldreef 75, Leuven 3001, Belgium

10. Bioimaging Team, Safety Measurement Institute, Korea Research Institute of Standard and Science 10 , 267 Gajeong-ro, Yuseong-gu, Daejeon 34113, Republic of Korea

11. IONTOF Technologies GmbH 11 , Heisenbergstr.15, Münster 48149, Germany

12. Beijing National Laboratory for Molecular Sciences; National Centre for Mass Spectrometry in Beijing; CAS Key Laboratory of Analytical Chemistry for Living Biosystems, Institute of Chemistry, Chinese Academy of Sciences 13 , Beijing 100190, People’s Republic of China

Abstract

Due to the extremely high specific surface area of nanoparticles and corresponding potential for adsorption, the results of surface analysis can be highly dependent on the history of the particles, particularly regarding sample preparation and storage. The sample preparation method has, therefore, the potential to have a significant influence on the results. This report describes an interlaboratory comparison (ILC) with the aim of assessing which sample preparation methods for ToF-SIMS analysis of nanoparticles provided the most intra- and interlaboratory consistency and the least amount of sample contamination. The BAM reference material BAM-P110 (TiO2 nanoparticles with a mean Feret diameter of 19 nm) was used as a sample representing typical nanoparticles. A total of 11 participants returned ToF-SIMS data, in positive and (optionally) negative polarity, using sample preparation methods of “stick-and-go” as well as optionally “drop-dry” and “spin-coat.” The results showed that the largest sources of variation within the entire data set were caused by adventitious hydrocarbon contamination or insufficient sample coverage, with the spin-coating protocol applied in this ILC showing a tendency toward insufficient sample coverage; the sample preparation method or the participant had a lesser influence on results.

Funder

Horizon 2020 Framework Programme

Publisher

American Vacuum Society

Subject

Surfaces, Coatings and Films,Surfaces and Interfaces,Condensed Matter Physics

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