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Micro- to Nano-scale Soil and Rhizosphere Processes Analyzed Using Multiple Beamlines at the Sirius Synchrotron

Micro- to Nano-scale Soil and Rhizosphere Processes Analyzed Using Multiple Beamlines at the Sirius Synchrotron
Micro- to Nano-scale Soil and Rhizosphere Processes Analyzed Using Multiple Beamlines at the Sirius Synchrotron
Determining mechanisms that regulate plant-nutrient behavior in agricultural soils is often confounded by interactions between physical, chemical, and biological processeswithin these multicomponent, heterogeneous, and hierarchical systems. This presentation will focus on strategies and examples of addressing these complexities by using complementary techniques at multiple Sirius beamlines. For example, we hypothesize that diffusion and reaction of fertilizer phosphate inside soil microaggregates contributes to slowly reversible phosphate binding ("fixation"), which diminishes plant availability
of this macronutrient. Micro and nanoscale imaging results from three beamlines wereused to evaluate the 3D internal physical structure of soil microaggregates (CATERETÊcoherent diffraction imaging beamline), 3D spatial distributions of soil-matrix elements (CARNAÛBA coherent X-ray nanoprobe beamline), and the presence of biological components (IMBUIA infrared microprobe beamline). Results revealed accumulations of physical structures of high electron density that at least partially coincide with hotspots of iron and other metals, as well as structures of low electron density that are possibly of biological origin. We will also illustrate how a combination of chemical imaging around a living wheat root at CARNAÛBA and root-structural imaging at the MOGNO X-ray
computed tomography beamline reveal root-induced chemical changes in the rhizosphereover time. Initial results show highly reproducible spatial structures of soil matrix elements in the rhizosphere over time and well-defined imaging of roots and root hairs. Integrating multimodal analyses from beamlines with unique capabilities to probe different aspects of a soil matrix is essential for determining how coupled processes affect agricultural nutrient behavior in such complex systems
Hesterberg, Dean
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Rosas Ferreira, Talita
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Pérez, Carlos
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Roose, Tiina
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Cristina Polo, Carla
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Madeiro da Costa, Ohanna
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Rabelo, Renata
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Tolentino, Hélio
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Benedetti, Celso
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Tisdale, Ripley
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Westfahl, Jr., Harry
a3861223-2c2e-4832-a213-af0c3012cf98
Hesterberg, Dean
a8e552bd-92f3-4daa-9328-a9d631d92045
Rosas Ferreira, Talita
a3169e57-76c3-4ed7-8f37-ecc9ba59a416
Pérez, Carlos
95953fee-668e-4929-bd27-98a813cecef9
Roose, Tiina
3581ab5b-71e1-4897-8d88-59f13f3bccfe
Cristina Polo, Carla
776b7d70-4cd1-418d-b614-221f33f38e58
Madeiro da Costa, Ohanna
3df9a344-dda8-4f33-81e9-f7d617c3cfdd
Rabelo, Renata
1150c480-cdfd-4605-9925-7a171ad4d63c
Tolentino, Hélio
2a6c43ec-af7b-4ddf-93c2-d7124fcd199b
Benedetti, Celso
126037ea-46fd-484b-b4a9-c9abe2b995a4
Tisdale, Ripley
48d0be25-b8fb-4bba-a4f8-b6a673562c83
Westfahl, Jr., Harry
a3861223-2c2e-4832-a213-af0c3012cf98

Hesterberg, Dean, Rosas Ferreira, Talita, Pérez, Carlos, Roose, Tiina, Cristina Polo, Carla, Madeiro da Costa, Ohanna, Rabelo, Renata, Tolentino, Hélio, Benedetti, Celso, Tisdale, Ripley and Westfahl, Jr., Harry (2023) Micro- to Nano-scale Soil and Rhizosphere Processes Analyzed Using Multiple Beamlines at the Sirius Synchrotron. In Fundamental Research and In Vivo Studies. (In Press)

Record type: Conference or Workshop Item (Paper)

Abstract

Determining mechanisms that regulate plant-nutrient behavior in agricultural soils is often confounded by interactions between physical, chemical, and biological processeswithin these multicomponent, heterogeneous, and hierarchical systems. This presentation will focus on strategies and examples of addressing these complexities by using complementary techniques at multiple Sirius beamlines. For example, we hypothesize that diffusion and reaction of fertilizer phosphate inside soil microaggregates contributes to slowly reversible phosphate binding ("fixation"), which diminishes plant availability
of this macronutrient. Micro and nanoscale imaging results from three beamlines wereused to evaluate the 3D internal physical structure of soil microaggregates (CATERETÊcoherent diffraction imaging beamline), 3D spatial distributions of soil-matrix elements (CARNAÛBA coherent X-ray nanoprobe beamline), and the presence of biological components (IMBUIA infrared microprobe beamline). Results revealed accumulations of physical structures of high electron density that at least partially coincide with hotspots of iron and other metals, as well as structures of low electron density that are possibly of biological origin. We will also illustrate how a combination of chemical imaging around a living wheat root at CARNAÛBA and root-structural imaging at the MOGNO X-ray
computed tomography beamline reveal root-induced chemical changes in the rhizosphereover time. Initial results show highly reproducible spatial structures of soil matrix elements in the rhizosphere over time and well-defined imaging of roots and root hairs. Integrating multimodal analyses from beamlines with unique capabilities to probe different aspects of a soil matrix is essential for determining how coupled processes affect agricultural nutrient behavior in such complex systems

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Accepted/In Press date: 13 May 2023

Identifiers

Local EPrints ID: 477658
URI: http://eprints.soton.ac.uk/id/eprint/477658
PURE UUID: e857a672-7a14-4279-ad07-e2b6c4b519d6
ORCID for Tiina Roose: ORCID iD orcid.org/0000-0001-8710-1063

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Date deposited: 12 Jun 2023 16:46
Last modified: 17 Mar 2024 03:14

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Contributors

Author: Dean Hesterberg
Author: Talita Rosas Ferreira
Author: Carlos Pérez
Author: Tiina Roose ORCID iD
Author: Carla Cristina Polo
Author: Ohanna Madeiro da Costa
Author: Renata Rabelo
Author: Hélio Tolentino
Author: Celso Benedetti
Author: Ripley Tisdale
Author: Harry Westfahl, Jr.

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