# Surface-activated bonding between a 3D-printed Ti-6Al-4V structure and bulk aluminum

https://mdr.nims.go.jp/datasets/6acf9936-0c20-4862-9850-790b2480c714

## File

- [Mercer_et_al-2024-Journal_of_Materials_Science__Materials_in_Engineering.pdf](https://mdr.nims.go.jp/filesets/1b7f173b-85ff-45e1-9b1d-2f4fdc62a609/download) ([Detail](https://mdr.nims.go.jp/filesets/1b7f173b-85ff-45e1-9b1d-2f4fdc62a609.md))

## Id

6acf9936-0c20-4862-9850-790b2480c714

## Local identifier



## Visibility

open_to_public

## State

published

## Created at

2024-12-20T05:40:34.486334Z

## Updated at

2024-12-21T03:30:47.717106Z

## Published at

2024-12-21T03:30:47.809317Z

## Doi



## First published url

https://doi.org/10.1186/s40712-024-00195-3

## Date published

2024-12-20

## Recorded date published



## Resource type

journal_article

## Manuscript type

vor

## Collection



## Title

- title: Surface-activated bonding between a 3D-printed Ti-6Al-4V structure and bulk
    aluminum
  title_type: original
  lang: en

## Description

- description: "Surface-activated bonding (SAB) of a 3D-printed Ti-6Al-4V pillar structure
    (fabricated by selective laser melting) to pure bulk aluminum at room temperature
    has been investigated. Argon beam irradiation was used to remove surface contaminants
    and “activate” the surfaces prior to bonding. The surface chemistry of the Ti-6Al-4V
    surface was analyzed using Electron Spectroscopy for Chemical Analysis (ESCA)
    to make sure any oxides had been removed by the irradiation procedure. The two
    materials were successfully bonded via SAB using special bonding apparatus, and
    scanning transmission electron microscopy (STEM) observation revealed a flat well-bonded
    interface with no obvious porosity. Furthermore, no thick reaction layer that
    could compromise the strength of the bond was evident. An oxide layer approximately
    2 nm in thickness was observed at the interface by high-resolution TEM,\r\nbut
    this is not considered sufficient to have a detrimental effect on bond integrity.
    The results of the investigation show that 3D-printed materials and structures
    can be successfully joined to aluminum by SAB techniques."
  description_type: abstract
  lang: und

## Creator

- name: Christopher Mercer
  role: author
  orcid: https://orcid.org/0000-0002-4249-4075
- name: Akira Hasegawa
  role: author
  orcid: https://orcid.org/0000-0003-1854-7605
- name: Naoe Hosoda
  role: author
  orcid: https://orcid.org/0000-0002-7440-4927

## Contact agent



## Publisher

organization: Springer Science and Business Media LLC

## Managing organization



## Keyword

- subject: Surface-activated bonding
  schema: not_defined

## Rights

- identifier: https://creativecommons.org/licenses/by/4.0/

## Other identifier(s)



## Data origin

- data_origin_type: other

## Embargo



## Journal

- title: 'Journal of Materials Science: Materials in Engineering'
  issn: '30048958'
  volume: '19'
  article_number: '47'

## Conference



## Related item



## Funding



## Instrument



## Instrument operator



## Instrument managing organization



## Measurement method



## Specimen



## Chemical composition



## Structure for specimen



## Structural feature for specimen



## Specific property for specimen



## Process for specimen treatment



## Computational method



## Energy level/transition state



## Software



## Custom property



## Fileset

- id: 1b7f173b-85ff-45e1-9b1d-2f4fdc62a609
  filename: Mercer_et_al-2024-Journal_of_Materials_Science__Materials_in_Engineering.pdf
  content_type: application/pdf
  size: 2216021
  md5: 6a3c477520c95eb57c731984968bd91a

## Thumbnail

fileset_id: 1b7f173b-85ff-45e1-9b1d-2f4fdc62a609
filename: Mercer_et_al-2024-Journal_of_Materials_Science__Materials_in_Engineering.pdf