We will study the formation history of the Milky Way, and the earliest phases of its chemical enrichment, with a sample of more than 1.5 million stars at high galactic latitude. Elemental abundances of up to 20 elements with a precision of better than 0.2 dex will be derived for these stars. The sample will include members of kinematically coherent substructures, which we will associate with their possible birthplaces by means of their abundance signatures and kinematics, allowing us to test models of galaxy formation. Our target catalogue is also expected to contain 30 000 stars at a metallicity of less than one hundredth that of the Sun. This sample will therefore be almost a factor of 100 larger than currently existing samples of metal-poor stars for which precise elemental abundances are available (determined from high-resolution spectroscopy), enabling us to study the early chemical evolution of the Milky Way in unprecedented detail.

4MOST Consortium Survey 2: The Milky Way Halo High-Resolution Survey / Norbert Christlieb; Chiara Battistini; Piercarlo Bonifacio; Elisabetta Caffau; Hans-Günter Ludwig; Martin Asplund; Paul Barklem; Maria Bergemann; Ross Church; Dominic Ford; Eva K. Grebel; Camilla Juul Hansen; Amina Helmi; Georges Kordopatis; Mikhail Kovalev; Andreas Korn; Karin Lind; Andreas Quirrenbach; Jan Rybizki; Asa Skuladottir; Else Starkenburg. - In: THE MESSENGER. - ISSN 0722-6691. - ELETTRONICO. - (2019), pp. 0-0. [10.18727/0722-6691/5121]

4MOST Consortium Survey 2: The Milky Way Halo High-Resolution Survey

Asa Skuladottir;
2019

Abstract

We will study the formation history of the Milky Way, and the earliest phases of its chemical enrichment, with a sample of more than 1.5 million stars at high galactic latitude. Elemental abundances of up to 20 elements with a precision of better than 0.2 dex will be derived for these stars. The sample will include members of kinematically coherent substructures, which we will associate with their possible birthplaces by means of their abundance signatures and kinematics, allowing us to test models of galaxy formation. Our target catalogue is also expected to contain 30 000 stars at a metallicity of less than one hundredth that of the Sun. This sample will therefore be almost a factor of 100 larger than currently existing samples of metal-poor stars for which precise elemental abundances are available (determined from high-resolution spectroscopy), enabling us to study the early chemical evolution of the Milky Way in unprecedented detail.
2019
0
0
Norbert Christlieb; Chiara Battistini; Piercarlo Bonifacio; Elisabetta Caffau; Hans-Günter Ludwig; Martin Asplund; Paul Barklem; Maria Bergemann; Ross Church; Dominic Ford; Eva K. Grebel; Camilla Juul Hansen; Amina Helmi; Georges Kordopatis; Mikhail Kovalev; Andreas Korn; Karin Lind; Andreas Quirrenbach; Jan Rybizki; Asa Skuladottir; Else Starkenburg
File in questo prodotto:
File Dimensione Formato  
Christliebmessenger-no175-26-29.pdf

accesso aperto

Tipologia: Pdf editoriale (Version of record)
Licenza: Open Access
Dimensione 604.16 kB
Formato Adobe PDF
604.16 kB Adobe PDF

I documenti in FLORE sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1313348
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus ND
  • ???jsp.display-item.citation.isi??? ND
social impact