Department of Environment and Energy, Sejong University, Seoul 05006, South Korea.
Department of Environment Energy Engineering, Seoul National University of Science & Technology, Seoul 01811, South Korea.
Sci Total Environ. 2022 Jan 20;805:150304. doi: 10.1016/j.scitotenv.2021.150304. Epub 2021 Sep 11.
Biochar (BC) application has the potential to be integrated into a carbon-trading framework owing to its multiple environmental and economic benefits. Despite the increasing research attention over the past ten years, the mechanisms of BC-induced priming effects on soil organic carbon mineralization and their influencing factors have not been systematically considered. This review aims to document the recent progress in BC research by focusing on (1) how BC-induced priming effects change the soil environment, (2) the factors governing the mechanisms underlying BC amendment effects on soils, and (3) how BC amendments alter soil microbial communities and nutrient dynamics. Here, we carried out a detailed examination of the origins of different biochar, its pyrolysis conditions, and potential interactions with various factors that affect BC characteristics and mechanisms of C mineralization in primed soil. These findings clearly addressed the strong linkage between BC properties and abiotic factors that leads to change the soil microclimate, priming effects, and carbon stabilization. This review offers an overview of a fragmented body of evidence and the current state of understanding to support the application of BC in different soil environments with the aim of sustaining or improving the agricultural crop production.
生物炭(BC)由于其具有多种环境和经济效益,因此有可能被纳入碳交易框架中。尽管在过去十年中越来越受到关注,但生物炭诱导土壤有机碳矿化的激发效应的机制及其影响因素尚未得到系统考虑。本综述旨在通过关注(1)生物炭诱导激发效应对土壤环境的影响,(2)控制生物炭改良对土壤影响机制的因素,以及(3)生物炭改良如何改变土壤微生物群落和养分动态,记录最近生物炭研究的进展。在这里,我们详细研究了不同生物炭的起源、热解条件以及与各种因素的潜在相互作用,这些因素会影响生物炭特性和在激发土壤中碳矿化的机制。这些发现清楚地阐明了生物炭特性与导致改变土壤小气候、激发效应和碳稳定性的非生物因素之间的紧密联系。本综述概述了分散的证据和当前的理解状态,以支持在不同土壤环境中应用生物炭,旨在维持或提高农业作物生产。