Published April 2021 | Version v1
Journal article

C-offset and crop energy efficiency increase due industrial poultry waste use in long-term no-till soil minimizing environmental pollution

  • 1. Department of Soil Science and Agricultural Engineering, State University of Ponta Grossa, Av. Carlos Cavalcanti 4748, Campus de Uvaranas, Ponta Grossa, PR, 84030-900 (Brazil)
  • 2. Carbon Management and Sequestration Center, School of Environment and Natural Resources, The Ohio State University, 2021 Coffey Rd., Columbus, OH, 43210 (United States)
  • 3. Federal Rural University of Pernambuco, Department of Agronomy, Av. Dom Manuel Medeiros, 52171900, Recife, PE (Brazil)
  • 4. Technical University of Munich, Emil-Ramann-Straße 2, 85354, Freising (Germany)
  • 5. Instituto Agronômico do Paraná, Polo Regional de Ponta Grossa, PR (Brazil)

Description

Highlights: • The use of poultry slaughterhouse waste as biofertilizer promote higher soil C sequestration than those by mineral fertilizer. • The replacement of mineral fertilizer by poultry slaughterhouse waste promoted higher crop energy efficiency and productivity. • The increase in C-offset through biofertilizer can promote impact in CO2-Ceq mitigation minimizing environmental pollution. Brazil is one of the major global poultry producers, and the organic waste generated by the chicken slaughterhouses can potentially be used as a biofertilizer in agriculture. This study was designed to test the hypothesis that continuous use of biofertilizer to the crops, substituting the use of mineral fertilizer promote C-offset for the soil and generate crop energy efficiency for the production system. Thus, the objectives of this study were to evaluate the effects of biofertilizer use alone or in combination with mineral fertilizer on soil organic carbon (SOC) stock, carbon dioxide (CO2) mitigation, C-offset, crop energy efficiency and productivity, and alleviation of environmental pollution. The experiment was established in southern Brazil on a soil under 15 years of continuous no-till (NT). Experimental treatments were as follows: i) Control with no fertilizer application, ii) 100% use of industrial mineral fertilizer (Min-F); iii) 100% use of organic waste originated from poultry slaughterhouses and hereinafter designated biofertilizer (Bio-F), and iv) Mixed fertilizer equivalent to the use of 50% mineral fertilizer + 50% of biofertilizer (Mix-F). Effects of experimental treatments were assessed for the crop sequence based on bean (Phaseolus vulgaris), soybean (Glycine max) and corn (Zea mays) in the summer and wheat (Triticum aestivum) and black oat (Avena strigosa Schreb) in the winter composing two crops per year, as follow: bean/wheat-soybean/black oat-corn/wheat-soybean/black oat-corn/wheat-bean. The continuous use of Bio-F treatment significantly increased the index of crop energy efficiency. It was higher than that of control, and increased it by 25.4 Mg CO2eq ha−1 over that of Min-F treatment because of higher inputs of crop biomass-C into the system. Further, continuous use of Bio-F resulted in a significantly higher CO2eq stock and offset than those for Min-F treatment. A positive relationship between the C-offset and the crop energy efficiency (R2 = 0.71, p < 0.001) indicated that the increase of C-offset was associated with the increase of energy balance and the amount of SOC sequestered. The higher energy efficiency and C-offset by application of Bio-F indicated that the practice of crop bio fertilization with poultry slaughterhouse waste is a viable alternative for recycling and minimizing the environmental impacts.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.envpol.2021.116565

Additional details

Identifiers

DOI
10.1016/j.envpol.2021.116565;
PII
S0269749121001433;

Publishing Information

Journal Title
Environmental Pollution (1987)
Journal Volume
275
Journal Page Range
vp.
ISSN
0269-7491
CODEN
ENPOEK

Optional Information

Copyright
Copyright (c) 2021 Elsevier Ltd. All rights reserved.