Skip to main content

Stardust from Supernovae and Its Isotopes

  • Reference work entry
  • First Online:
Handbook of Supernovae

Abstract

Primitive solar system materials, namely, meteorites, interplanetary dust particles, and cometary matter contain small quantities of nanometer- to micrometer-sized refractory dust grains that exhibit large isotopic abundance anomalies. These grains are older than our solar system and have been named “presolar grains.” They formed in the winds of red giant and asymptotic giant stars and in the ejecta of stellar explosions, i.e., represent a sample of stardust that can be analyzed in terrestrial laboratories for isotopic compositions and other properties. The inventory of presolar grains is dominated by grains from red giant and asymptotic giant branch stars. Presolar grains from supernovae form a minor but important subpopulation. Supernova (SN) minerals identified to date include silicon carbide, graphite, silicon nitride, oxides, and silicates. Isotopic studies of major, minor, and trace elements in these dust grains have provided detailed insights into nucleosynthetic and mixing processes in supernovae and how dust forms in these violent environments.

This is a preview of subscription content, log in via an institution to check access.

Access this chapter

Institutional subscriptions

Similar content being viewed by others

References

  • Amari S, Anders E, Virag A, Zinner E (1990) Interstellar graphite in meteorites. Nature 345:238–240

    Article  ADS  Google Scholar 

  • Amari S, Hoppe P, Zinner E, Lewis RS (1992) Interstellar SiC with unusual isotopic compositions: grains from a supernova? Astrophys J 394:L43–L46

    Article  ADS  Google Scholar 

  • Amari S, Zinner E, Lewis RS (1996)41Ca in presolar graphite of supernova origin. Astrophys J 470:L101–L104

    Google Scholar 

  • Amari S, Zinner E, Lewis RS (1999) A singular presolar SiC grain with extreme29,30Si excesses. Astrophys J 517:L59–L62

    Article  ADS  Google Scholar 

  • Amari S, Zinner E, Gallino R (2014) Presolar graphite from the Murchison meteorite: an isotopic study. Geochim Cosmochim Acta 133:479–522

    Article  ADS  Google Scholar 

  • Bernatowicz T, Amari S, Zinner E, Lewis RS (1991) Interstellar grains within interstellar grains. Astrophys J 373:L73–L76

    Article  ADS  Google Scholar 

  • Bernatowicz T, Fraundorf G, Ming T, Anders E, Wopenka B, Zinner E, Fraundorf P (1987) Evidence for interstellar SiC in the Murray carbonaceous meteorite. Nature 330: 728–730

    Article  ADS  Google Scholar 

  • Black DC, Pepin RO (1969) Trapped neon in meteorites. II. Earth Planet Sci Lett 6:395–405

    Article  ADS  Google Scholar 

  • Cherchneff I (2013) Dust production in supernovae. In: The life cycle of dust in the Universe, Taipei. PoS(LCDU 2013), p 18

    Google Scholar 

  • Choi B-G, Huss GR, Wasserburg GJ, Gallino R (1998) Presolar corundum and spinel in ordinary chondrites: origins from AGB stars and a supernova. Science 282:1284–1289

    Article  ADS  Google Scholar 

  • Choi B-G, Wasserburg GJ, Huss GR (1999) Circumstellar hibonite and corundum and nucleosynthesis in asymptotic giant branch stars. Astrophys J 522:L133–L136

    Article  ADS  Google Scholar 

  • Clayton DD, Arnett WD, Kane J, Meyer BS (1997) Type X silicon carbide presolar grains: Type Ia supernova condensates? Astrophys J 486:824–834

    Article  ADS  Google Scholar 

  • Croat TK, Bernatowicz TJ, Amari S, Messenger S, Stadermann FJ (2003) Structural, chemical, and isotopic microanalytical investigations of graphite from supernovae. Geochim Cosmochim Acta 67:4705–4725

    Article  ADS  Google Scholar 

  • Floss C, Stadermann F (2009) Auger nanoprobe analysis of presolar ferromagnesian silicate grains from primitive CR chondrites QUE 99177 and MET 00426. Geochim Cosmochim Acta 73:2415–2440

    Article  ADS  Google Scholar 

  • Groopman E, Zinner E, Amari S, Gyngard F, Hoppe P, Jadhav M, Lin Y, Xu YC, Marhas KK, Nittler LR (2015) Inferred initial 26Al/27Al ratios in presolar stardust grains from supernovae are higher than previously estimated. Astrophys J 809:31(16pp)

    Google Scholar 

  • Gyngard F, Zinner E, Nittler LR, Morgand A, Stadermann FJ, Hynes KM (2010) Automated NanoSIMS measurements of spinel stardust from the Murray meteorite. Astrophys J 717:107–120

    Article  ADS  Google Scholar 

  • Hoppe P (2011) Measurements of presolar grains. In: Proceedings of the 11th symposium on nuclei in the cosmos (NIC XI), Heidelberg, 19 July–23 July 2010. Available online at http://pos.sissa.it/cgi-bin/reader/conf.cgi?confid=100#session-121

  • Hoppe P (2015) NanoSIMS and more: New tools in nuclear astrophysics. J Phys Conf Ser 665:012075

    Article  Google Scholar 

  • Hoppe P, Besmehn A (2002) Evidence for extinct Vanadium-49 in presolar silicon carbide grains from supernovae. Astrophys J 576:L69–L72

    Article  ADS  Google Scholar 

  • Hoppe P, Fujiya W, Zinner E (2012) Sulfur molecule chemistry in supernova ejecta recorded by silicon carbide stardust. Astrophys J 745:L26

    Article  ADS  Google Scholar 

  • Hoppe P, Leitner J, Gröner E, Marhas KK, Meyer BS, Amari S (2010) NanoSIMS studies of small presolar SiC grains: new insights into supernova nucleosynthesis, chemistry, and dust formation. Astrophys J 719:1370–1384

    Article  ADS  Google Scholar 

  • Hoppe P, Strebel R, Eberhardt P, Amari S, Lewis RS (2000) Isotopic properties of silicon carbide X grains from the Murchison meteorite in the size range 0.5–1.5 um. Meteorit Planet Sci 35:1157–1176

    Article  ADS  Google Scholar 

  • Hutcheon ID, Huss GR, Fahey AJ, Wasserburg GJ (1994) Extreme26Mg and17O enrichments in an Orgueil corundum: identification of a presolar oxide grain. Astrophys J 425:L97–L100

    Article  ADS  Google Scholar 

  • Hynes KM, Gyngard F (2009) The presolar grain data base. http://presolar.wustl.edu/~pgd.LunarPlanetSci40:abstract#1398

  • Jadhav M, Zinner E, Amari S, Maruoka T, Marhas KK, Gallino R (2013) Multi-element isotopic analyses of presolar graphite grains from Orgueil. Geochim Cosmochim Acta 113:193–224

    Article  ADS  Google Scholar 

  • Lewis RS, Tang M, Wacker JF, Anders E, Steel E (1987) Interstellar diamonds in meteorites. Nature 326:160–162

    Article  ADS  Google Scholar 

  • Lin Y, Gyngard F, Zinner E (2010) Isotopic analysis of supernova SiC and Si3N4grains from the Qingzhen (EH3) chondrite. Astrophys J 709:1157–1173

    Article  ADS  Google Scholar 

  • Messenger S, Keller LP, Lauretta DS (2005) Supernova olivine from cometary dust. Science 309:737–741

    Article  ADS  Google Scholar 

  • Messenger S, Keller LP, Stadermann F, Walker RM, Zinner E (2003) Samples of stars beyond the solar system: silicate grains in interplanetary dust. Science 300:105–108

    Article  ADS  Google Scholar 

  • Meyer BS, Clayton DD, The L-S (2000) Molybdenum and zirconium isotopes from a supernova neutron burst. Astrophys J 540:L49–L52

    Article  ADS  Google Scholar 

  • Nguyen A, Nittler LR, Stadermann F, Stroud R, Alexander CMOD (2010) Coordinated analyses of presolar grains in the Allan Hills 77307 and Queen Elizabeth Range 99177 meteorites. Astrophys J 719:166–189

    Article  ADS  Google Scholar 

  • Nguyen AN, Zinner E (2004) Discovery of ancient silicate stardust in a meteorite. Science 303:1496–1499

    Article  ADS  Google Scholar 

  • Nittler LR, Alexander CMOD, Gallino R, Hoppe P, Nguyen AN, Stadermann FJ, Zinner EK (2008) Aluminum-, calcium- and titanium-rich oxide stardust in ordinary chondrite meteorites. Astrophys J 682:1450–1478

    Article  ADS  Google Scholar 

  • Nittler LR, Alexander CMOD, Gao X, Walker RM, Zinner E (1997) Stellar sapphires: the properties and origins of presolar Al2O3 in meteorites. Astrophys J 483:475–495

    Article  ADS  Google Scholar 

  • Nittler LR, Alexander CMOD, Gao X, Walker RM, Zinner EK (1994) Interstellar oxide grains from the Tieschitz ordinary chondrite. Nature 370:443–446

    Article  ADS  Google Scholar 

  • Nittler LR, Amari S, Zinner E, Woosley SE, Lewis RS (1996) Extinct44Ti in presolar graphite and SiC: proof of a supernova origin. Astrophys J 462:L31–L34

    Article  ADS  Google Scholar 

  • Nittler LR, Hoppe P, Alexander CMOD, Amari S, Eberhardt P, Gao X, Lewis RS, Strebel R, Walker RM, Zinner E (1995) Silicon nitride from supernovae. Astrophys J 453:L25–L28

    Article  ADS  Google Scholar 

  • Pignatari M, Wiescher M, Timmes FX, Boer RJd, Thielemann FK, Fryer C, Heger A, Herwig F, Hirschi R (2013a) Production of carbon-rich presolar grains from massive stars. Astrophys J 767:L22 (6pp)

    Google Scholar 

  • Pignatari M, Zinner E, Bertolli MG, Trappitsch R, Hoppe P, Rauscher T, Fryer C, Herwig F, Hirschi R, Timmes FX, Thielemann F-K (2013b) Silicon carbide grains of type C provide evidence for the production of the unstable isotope 32Si in supernovae. Astrophys J 771:L7(5pp)

    Google Scholar 

  • Pignatari M, Zinner E, Hoppe P, Jordan CJ, Gibson BK, Trappitsch R, Herwig F, Fryer C, Hirschi R, Timmes FX (2015) Carbon-rich presolar grains from massive stars: subsolar 12C/13C and 14N/15N ratios and the mystery of 15N. Astrophys J 808:L43(6pp)

    Google Scholar 

  • Rauscher T, Heger A, Hoffman RD, Woosley SE (2002) Nucleosynthesis in massive stars with improved nuclear and stellar physics. Astrophys J 576:323–348

    Article  ADS  Google Scholar 

  • Reynolds JH, Turner G (1964) Rare gases in the chondrite Renazzo. J Geophys Res 69:3263–3281

    Article  ADS  Google Scholar 

  • Richter S, Ott U, Begemann F (1998) Tellurium in pre-solar diamonds as an indicator for rapid separation of supernova ejecta. Nature 391:261–263

    Article  ADS  Google Scholar 

  • Travaglio C, Gallino R, Amari S, Zinner E, Woosley S, Lewis RS (1999) Low-density graphite grains and mixing in type II supernovae. Astrophys J 510:325–354

    Article  ADS  Google Scholar 

  • Vollmer C, Hoppe P, Stadermann FJ, Floss C, Brenker F (2009) NanoSIMS analysis and Auger electron spectroscopy of silicate and oxide stardust from the carbonaceous chondrite Acfer 094. Geochim Cosmochim Acta 73:7127–7149

    Article  ADS  Google Scholar 

  • Zinner E (2014) Presolar grains. In: Davis AM (ed) Meteorites and cosmochemical processes. Treatise on geochemistry update 2, vol 1. Elsevier, Amsterdam, pp 181–213

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Peter Hoppe .

Editor information

Editors and Affiliations

Rights and permissions

Reprints and permissions

Copyright information

© 2017 Springer International Publishing AG

About this entry

Check for updates. Verify currency and authenticity via CrossMark

Cite this entry

Hoppe, P. (2017). Stardust from Supernovae and Its Isotopes. In: Alsabti, A., Murdin, P. (eds) Handbook of Supernovae. Springer, Cham. https://doi.org/10.1007/978-3-319-21846-5_113

Download citation

Publish with us

Policies and ethics