Published December 2019 | Version v1
Journal article

Spatially modelling the risk areas of chronic exposure to hydrothermal volcanic emissions using lichens

  • 1. Centre for Ecology, Evolution and Environmental Changes, and Azorean Biodiversity Group (cE3c-GBA), University of the Azores, 9501-801 Ponta Delgada (Portugal)
  • 2. Faculty of Sciences and Technology, University of the Azores, 9501-801 Ponta Delgada (Portugal)
  • 3. Centre for Ecology, Evolution and Environmental Changes, Faculdade de Ciências, Universidade de Lisboa (cE3c-FC-ULisboa), Edifício C2, 5 piso, Campo Grande, 1749-016 Lisboa (Portugal)
  • 4. IVAR, Institute of Volcanology and Risks Assessment, University of the Azores, 9501-801 Ponta Delgada (Portugal)
  • 5. Faculdade de Ciências, Universidade de Lisboa, Campo Grande, 1749-016 Lisboa (Portugal)

Description

Highlights: • δ34S in lichens is a time-integrated tracer of airborne hydrothermal emissions. • The model efficiently assessed chronic outdoor exposure to volcanic air pollution. • Habitational risk areas are shown in a high spatial resolution map integrating time. • The methodologic approach is replicable in other volcanic areas of the world. • The developed tool is useful to uphold health safety measures for the volcanic areas. -- Abstract: Human populations living in volcanically active areas are chronically exposed to volcanogenic air pollution, potentially contributing to long-term adverse health effects. However, mapping chronic exposure is difficult due to low spatial resolution of monitoring data on air pollutants and the need for time integration. To overcome these problems, lichens were tested as ecological indicators of hydrothermal volcanic air pollution, considering their bioaccumulation capacity over time, by transplanting them from a reference area to several sites (n = 39) in a volcanic area. The test was developed at Furnas volcano (Azores, Portugal). A stratified sampling design was followed using previous measurements of soil CO2 flux at ground level and the distance to the main fumarolic fields. After 6 months of exposure, lichen transplants were analyzed for S isotopic ratio (δ34S), which strongly related with the distance to fumarolic fields on a logarithmic regression, serving as an appropriate hydrothermal exposure biomarker. Considering kriging interpolated δ34S values as tracer of airborne hydrothermal emissions and habitational areas as proxy of ongoing human presence, a map was built relating both information per area unit to spatially model risk areas. It was estimated that 26% of habitational areas in the study area stand at high or very high risk of outdoors chronic exposure to airborne hydrothermal emissions. This methodologic approach to produce chronic exposure risk maps is applicable to other volcanically active and inhabited areas of the world, with time-integration and high spatial resolution, contributing in this way for spatially focusing future human health assessments.

Additional details

Additional titles

Augmented title (English)
Air pollution;Volcanism;Chronic exposure;Lichens;Biomonitoring;S isotopic ratio

Identifiers

DOI
10.1016/j.scitotenv.2019.133891;
PII
S0048969719338410;

Publishing Information

Journal Title
Science of the Total Environment
Journal Volume
697
Journal Page Range
vp.
ISSN
0048-9697
CODEN
STENDL

INIS

Optional Information

Copyright
Copyright (c) 2019 Elsevier B.V. All rights reserved.