Back to Search Start Over

Effect mechanism of phosphorous-containing additives on carbon structure evolution and biochar stability enhancement.

Authors :
Yang, Haiping
Yu, Yamian
Zhang, Han
Wang, Wanwan
Zhu, Jinjiao
Chen, Yingquan
Zhang, Shihong
Chen, Hanping
Source :
Biochar; 4/16/2024, Vol. 6 Issue 1, p1-16, 16p
Publication Year :
2024

Abstract

The regulation of the pyrolysis process is a key step in increasing the carbon sequestration capacity of biochar. The effect of K<subscript>3</subscript>PO<subscript>4</subscript> addition on the yield, chemical composition, characteristic functional groups, macromolecular skeleton, graphite crystallites, and stability of biochar was studied in this paper using two-dimensional infrared correlation spectroscopy (2D-PCIS), X-ray photoelectron spectroscopy, Raman spectrum, and other characterization methods combined with thermal/chemical oxidation analysis. It is discovered that adding K<subscript>3</subscript>PO<subscript>4</subscript> may effectively minimize the graphitization temperature range and increase biochar's yield, aromaticity, H/C ratio, and proportion of refractory/recalcitrant organic carbon. The 2D-PCIS and Raman analysis revealed that K<subscript>3</subscript>PO<subscript>4</subscript> mostly promoted the dehydrogenation and polycondensation process of the aromatic rings in the char precursor, transforming the amorphous carbon structure of biochar into an ordered turbostratic microcrystalline structure. K<subscript>3</subscript>PO<subscript>4</subscript> enhanced biochar stability mostly at medium-high temperatures (350 ~ 750℃) by stimulating the transformation of unstable structures of biochar to stable carbon-containing structures or by inhibiting the interaction of its active sites with oxidants through the mineralization process. A 20% phosphorus addition increased biochar's refractory index (R<subscript>50</subscript>) by roughly 11%, and it also boosted biochar's oxidation resistance (H<subscript>2</subscript>O<subscript>2</subscript> or K<subscript>2</subscript>CrO<subscript>4</subscript>) efficiency, reducing carbon oxidation loss by up to 7.31%. However, at higher temperatures (> 750 ℃), the doping of phosphorus atoms into the carbon skeleton degraded the biochar structure's stability. The results of this study suggest that using exogenous phosphorus-containing additives is an efficient way to improve the stability of biochar. Highlights: K<subscript>3</subscript>PO<subscript>4</subscript> promoted biochar precursor's dehydrogenation/polycondensation process to form fused-ring aromatic structures. K<subscript>3</subscript>PO<subscript>4</subscript> increased recalcitrant carbon proportion and shielded biochar's active sites through the mineralization process. By adding 20 wt% of K<subscript>3</subscript>PO<subscript>4</subscript>, the thermal and chemical stability of biochar were enhanced by 11% and 7%, respectively [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
25247972
Volume :
6
Issue :
1
Database :
Complementary Index
Journal :
Biochar
Publication Type :
Academic Journal
Accession number :
176652055
Full Text :
https://doi.org/10.1007/s42773-024-00330-5