Nano-Scale Secondary Ion Mass Spectrometry: A Paradigm Shift in Soil Science

Author:

Mir Yasir Hanif1ORCID,Qin Anzhen2ORCID,Mir Shakeel3ORCID,Rahman Shafeeq Ur4ORCID,Mushtaq Mehnaza5ORCID,Ganie Mumtaz A.1ORCID,Chesti M. H.1ORCID,Bhat Javid A.1ORCID,Baba Zahoor A.6ORCID,Bhat M. Auyoub1ORCID,Khan Inayat M.1ORCID,Rasool Rehana1ORCID,Shah Aanisa Manzoor1ORCID,Sadiq Shazia1ORCID,Basheeruddin Asdaq Syed Mohammed7ORCID,Ansari Mohammad Javed8ORCID,Yasin Ghulam9ORCID

Affiliation:

1. Division of Soil Science and Agricultural Chemistry, Faculty of Agriculture, Sher-e-Kashmir University of Agricultural Sciences and Technology of Kashmir, Sopore, India

2. Institute of Farmland Irrigation, Chinese Academy of Agricultural Sciences/Key Laboratory of Crop Water Use and Regulation, Ministry of Agriculture and Rural Affairs, Xinxiang, China

3. Division of Soil Science, Faculty of Horticulture, Sher-e-Kashmir University of Agricultural Sciences and Technology of Kashmir, Srinagar, India

4. Water Science and Environmental Engineering Research Center, College of Chemical and Environmental Engineering, Shenzhen University, Shenzhen 518060, China

5. Environmental Sciences, Indira Gandhi National Open University (IGNOU), Regional Centre Srinagar, Srinagar, Jammu and Kashmir, India

6. Division of Basic Sciences and Humanities, Faculty of Agriculture, Sher-e-Kashmir University of Agricultural Sciences and Technology of Kashmir, Sopore, India

7. Department of Pharmacy Practice, College of Pharmacy, AlMaarefa University, Diriyah, Riyadh 13713, Saudi Arabia

8. Department of Botany, Hindu College Moradabad (Mahatma Jyotiba Phule Rohilkhand University Bareilly), Bareilly 244001, India

9. Department of Forestry and Range Management, Bahauddin Zakariya University, Multan, Pakistan

Abstract

Soils exhibit structural heterogeneity across diverse spatio-temporal scales, yielding myriad of microhabitats, highlighting the need for a nuanced understanding of the intricate interactions within the soil matrix. At the nanometer scale, the interplay among organic matter (OM), mineral particles, and microbiota intricately govern the long-term destiny of soil carbon (C), nutrient cycling, and the fate of both organic and inorganic pollutants. Notably, the sorption of soil organic matter (SOM) onto smaller clay particles and its entrapment in microaggregates further contribute to this complex dynamic. Understanding these processes depends on recognizing their scale-dependent nature, necessitating sophisticated techniques for investigation. Although various methods are employed across scales, the current set of techniques still lacks the requisite sensitivity and resolution for microscale data collection. To address this limitation, the adoption of novel microscopic and spectroscopic techniques capable of probing molecular, isotopic, and elemental patterns at the micro to nano scale becomes imperative. Among these cutting-edge methodologies, the nano-scale secondary ion mass spectrometer (NanoSIMS) emerges as a paradigm-shifting tool. Representing the latest evolution in ion microprobes, NanoSIMS seamlessly integrates high-resolution microscopy and isotopic analysis, maintaining unparalleled signal transmission and spatial resolution, reaching as fine as 50 nm. Its capabilities extend beyond conventional applications in science, as evidenced by recent breakthroughs in utilizing NanoSIMS to study biophysical interfaces in soils. This article underscores the pressing need to advance the incorporation of NanoSIMS as a pioneering instrumentation technique in soil studies. Furthering the implementation of this novel instrumentation technique in soil studies will pave avenues and aid in the advancement of future research.

Funder

Chinese Academy of Agricultural Sciences

Publisher

Hindawi Limited

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