Use of amphibole chemistry for detecting tephras in deep-sea sequences (Chikyu C9001C cores) and developing a middle Pleistocene tephrochronology for NE Japan
Bibliographic Data
| ID | 14972008 |
|---|---|
| Authors | Tabito Matsu''Ura (0000-0002-6779-4656), Junko Komatsubara (0000-0003-0099-6744) |
| Year | 2017 |
| Volume | 456 |
| Pages | 163-179 |
| Publication date | 2017-10-01 |
| Peer Reviewed | Yes |
| Open Access | Yes |
| Type | ARTICLE |
| Venue | Quaternary International (JOURNAL) |
| Journal identifiers | ISSN: 1040-6182 • E-ISSN: 1873-4553 |
| Publisher | Elsevier BV (PUBLISHER) |
| DOI | 10.1016/j.quaint.2017.02.030 |
| OpenAlex | W2599543043 |
| Language | EN |
| Citations received | 1 |
| References cited | 62 |
Using amphibole crystals, we detected tephras in deep-sea sequences (Chikyu C9001C cores) and correlated marine and terrestrial tephras in NE Japan; then we reconsidered some previously reported tephra ages by using the age model of the cores. We identified 50 spikes in amphibole grains (numbered A1–A50 from top to bottom). Among these, 12 spikes (A38–49) corresponded to a thick, non-tephric sand layer. We selected 20 spikes containing amphibole grains with glass coatings as likely primary tephras and analyzed their chemistry for tephra characterization. On the basis of its amphibole chemistry, we correlated spike A34 with the Tn-Cii–Ciii layers of the Tanabu-C tephra (Tn-C), which erupted from Osore volcano on Shimokita Peninsula. We then showed that spike A34 represents primary tephra deposition, not secondary deposition through bioturbation or bottom current reworking, because amphibole grains with homogeneous chemistry were accumulated only in sediment near the spike (within 10 cm). We also showed that the chemical variation within each amphibole grain was not as great as the variation between grains, which further supports the correlation between spike A34 and Tn-Cii–Ciii. These findings show that amphibole grains, which are resistant to weathering, can be used for characterization and correlation of weathered tephras from which glass shards have been removed by dissolution. The glass shard chemistry of the 16H6A 60–80 tephra at 4.58 m below spike A34 (which does not correspond to an amphibole spike) suggests that this tephra likely correlates with the amphibole-free Tn-Ci layer. In the terrestrial sequences, non-tephric sediments (marine sand and lahar deposits) occur between Tn-Ci and Tn-Cii–Ciii, suggesting that some time elapsed after the deposition of Tn-Ci before Tn-Cii–Ciii were deposited. By using the stratigraphic information of the 16H6A 60–80 tephra and spike A34 together with the δ18O stratigraphy of the deep-sea sequence, we re-assigned the eruptive age of Tn-C from the previously reported zircon fission-track age of 180 ± 40 ka to MIS 8 (257–263 ka)
Amphibole · Geochemistry · Mineralogy · Quartz · Tephra · Tephrochronology · Volcanic glass · Volcanic rock · Volcano · Weathering · Geology and Paleoclimatology Research · Isotope Analysis in Ecology · Methane Hydrates and Related Phenomena · Geology · Paleontology
Biotite composition as a tool for the identification of Quaternary tephra beds
Late Quaternary cryptotephra detection and correlation in loess in northeastern Japan using cummingtonite geochemistry
Volcanic ash layers illuminate the resilience of Neanderthals and early modern humans to natural hazards
Tephrochronology and its application
Geochemical fingerprinting of the widespread Toba tephra using biotite compositions
The Pearlette family ash beds in the Great Plains
Identification of cryptotephra horizons in a North East Atlantic marine record spanning marine isotope stages 4 and 5a (∼60,000–82,000 a b2k)
Revised age and distribution of ca. 87ka Aso-4 tephra based on new evidence from the northwest Pacific Ocean
The Intav intercomparison of electron-beam microanalysis of glass by tephrochronology laboratories
Analysis of titanomagnetite within weathered middle Pleistocene KMT tephra and its application for fluvial terrace chronology, Kanto Plain, central Japan
Correlation of Middle Pleistocene crystal-rich tephra layers from Daisen Volcano, southwest Japan, based on the chemical composition and refractive index of mafic minerals
A marker tephra bed close to the Lower-Middle Pleistocene boundary
The variegated (VT) tephra
| Unique citing works | 1 |
|---|---|
| Citations per year | 1 |
| Citation span | 2026 - 2026 (1) |
| Citation velocity | current |
| Highly cited | No |
| Citation types | Neutral: 1 |