Green Synthesis of NiO Nanoflakes Using Bitter Gourd Peel, and Their Electrochemical Urea Sensing Application

Author:

Naz Irum1,Tahira Aneela12,Shah Aqeel Ahmed3ORCID,Bhatti Muhammad Ali4,Mahar Ihsan Ali1,Markhand Mehnaz Parveen2,Mastoi Ghulam Murtaza1,Nafady Ayman5ORCID,Medany Shymaa S.6ORCID,Dawi Elmuez A.7ORCID,Saleem Lama M.8,Vigolo Brigitte9ORCID,Ibupoto Zafar Hussain1ORCID

Affiliation:

1. Dr. M.A Kazi Institute of Chemistry, University of Sindh, Jamshoro 76080, Pakistan

2. Institute of Chemistry, Shah Abdul Latif University, Khairpur Mirs 66111, Pakistan

3. Wet Chemistry Laboratory, Department of Metallurgical Engineering, NED University of Engineering and Technology, University Road, Karachi 75270, Pakistan

4. Centre for Environmental Sciences, University of Sindh, Jamshoro 76080, Pakistan

5. Department of Chemistry, College of Science, King Saud University, Riyadh 11451, Saudi Arabia

6. Department of Chemistry, Faculty of Science, Cairo University, Cairo 12613, Egypt

7. Nonlinear Dynamics Research Centre (NDRC), Ajman University, Ajman P.O. Box 346, United Arab Emirates

8. Biomolecular Science, Earth and Life Science, Amsterdam University, De Boelelaan 1 105, 1081 HV Amsterdam, The Netherlands

9. Institut Jean Lamour, CNRS-Université de Lorraine, F-54000 Nancy, France

Abstract

To determine urea accurately in clinical samples, food samples, dairy products, and agricultural samples, a new analytical method is required, and non-enzymatic methods are preferred due to their low cost and ease of use. In this study, bitter gourd peel biomass waste is utilized to modify and structurally transform nickel oxide (NiO) nanostructures during the low-temperature aqueous chemical growth method. As a result of the high concentration of phytochemicals, the surface was highly sensitive to urea oxidation under alkaline conditions of 0.1 M NaOH. We investigated the structure and shape of NiO nanostructures using powder X-ray diffraction (XRD) and scanning electron microscopy (SEM). In spite of their flake-like morphology and excellent crystal quality, NiO nanostructures exhibited cubic phases. An investigation of the effects of bitter gourd juice demonstrated that a large volume of juice produced thin flakes measuring 100 to 200 nanometers in diameter. We are able to detect urea concentrations between 1–9 mM with a detection limit of 0.02 mM using our urea sensor. Additionally, the stability, reproducibility, repeatability, and selectivity of the sensor were examined. A variety of real samples, including milk, blood, urine, wheat flour, and curd, were used to test the non-enzymatic urea sensors. These real samples demonstrated the potential of the electrode device for measuring urea in a routine manner. It is noteworthy that bitter gourd contains phytochemicals that are capable of altering surfaces and activating catalytic reactions. In this way, new materials can be developed for a wide range of applications, including biomedicine, energy production, and environmental protection.

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Control and Systems Engineering

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