Published March 2018 | Version v1
Journal article

Copper immobilization by biochar and microbial community abundance in metal-contaminated soils

  • 1. Bioquímica, Universidad de La Frontera, P.O. Box 54-D, Temuco (Chile)
  • 2. Núcleo de Investigación en Energías Renovables, Dirección de Investigación, Universidad Católica de Temuco, Temuco (Chile)
  • 3. NBERC, School of Natural & Built Environments, University of South Australia, Mawson Lakes, SA 5095 (Australia)
  • 4. Escuela de Agronomía Universidad Católica de Temuco, Casilla 15D, Temuco (Chile)
  • 5. Centro de Edafología y Biología Aplicada del Segura (CEBAS-CSIC), Department of Soil and Water Conservation and Waste Management, Campus Universitario de Espinardo, Apartado de Correos 164, 30100 Espinardo, Murcia (Spain)

Description

Highlights: • Biochar reduced bioavailable Cu fraction up to 10 times. • Biochar increased microbial activities in soil. • Biochar produced changes in fungal and bacterial communities. • Biochar play a positive role promoting better plant growth. Biochar (BC) is gaining attention as a soil amendment that can remediate metal polluted soils. The simultaneous effects of BC on copper (Cu) mobility, microbial activities in soil using metallophytes have scarcely been addressed. The objective of this study was to evaluate the effects of biochar BCs on Cu immobilization and over soil microbial communities in a Cu-contaminated soil evaluated over a two-year trial. A Cu-contaminated soil (338 mg kg− 1) was incubated with chicken manure biochar (CMB) or oat hull biochar (OHB) at rates of 1 and 5% w/w. Metallophyte Oenothera picensis was grown over one season (six months). The above process was repeated for 3 more consecutive seasons using the same soils. The BCs increased the soil pH and decreased the Cu exchangeable fraction Cu by 5 and 10 times (for OHB and CMB, respectively) by increasing the Cu bound in organic matter and residual fractions, and its effects were consistent across all seasons evaluated. BCs provided favorable habitat for microorganisms that was evident in increased microbial activity. The DHA activity was increased in all BC treatments, reaching a maximum of 7 and 6 times higher than control soils in CMB and OHB. Similar results were observed in microbial respiration, which increased 53% in OHB and 61% in CMB with respect to control. The BCs produced changes in microbial communities in all seasons evaluated. The fungal and bacterial richness were increased by CMB and OHB treatments; however, no clear effects were observed in the microbial diversity estimators. The physiochemical and microbiological effects produced by BC result in an increase of plant biomass production, which was on average 3 times higher than control treatments. However, despite being a metallophyte, O. picensis did not uptake Cu efficiently. Root and shoot Cu concentrations decreased or changed insignificantly in most BC treatments.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.scitotenv.2017.10.223

Additional details

Identifiers

DOI
10.1016/j.scitotenv.2017.10.223;
PII
S004896971732942X;

Publishing Information

Journal Title
Science of the Total Environment
Journal Volume
616
Journal Page Range
p. 960-969
ISSN
0048-9697
CODEN
STENDL

Optional Information

Copyright
Copyright (c) 2017 Published by Elsevier B.V. All rights reserved.