References
[1]. Ladgaonkar, B. P., Patil, S. N. (2011). Designing of data acquisition system for susceptibility measurement. International Journal of Electrical Engineering and Embedded Systems (IJEEES), 3(2), 87-93.
[2]. Ladgaonkar, B. P., Patil, S. N., & Tilekar, S. K. (2013). Development of Ni-Zn Ferrite based smart humidity sensor module by using mixed signal programmable system-onchip. In Applied Mechanics and Materials (Vol. 310, pp. 490-493). Trans Tech Publications Ltd.
[3]. Patil, S. N., Ladgaonkar, B. P., Tilekar, S. K., Deshpande, J. D., & Pawar, A. M. (2019a). Investigation of temperature sensitive electrical properties of manganese-zinc ferrites. i-manager's Journal on Physical Sciences (JPHY),1(1), 16- 23.
[4]. Patil, S. N., & Ladgaonkar, B. P. (2013). Synthesis and implementation of NiZnFe2O4 ferrites to design embedded system for humidity measurement. Synthesis, 2(8), 3813- 3821.
[5]. Patil, S. N., & Pawar, A. M. (2020). Design of smart embedded system for detection of ammonia gas. i-manager's Journal on Embedded Systems, 9(1), 1-5. https://doi.org/10.26634/jes.9.1.17844
[6]. Patil, S. N., Deshpande, J. D., Tilekar, S. K., Ladgaonkar, B. P., & Pawar, A. M. (2020a). Synthesis and implementation of polycrystalline ferrite material for smart sensor module. Materials Today: Proceedings. https://doi.org/10.1016/j. matpr.2020.07.139
[7]. Patil, S. N., Ladgaonkar, B. P., & Pawar, A. M. (2019b). Carbon dioxide gas sensing property of nickel substituted zinc ferrite. i-manager's Journal on Material Science, 7(2), 42-53. https://doi.org/10.26634/jms.7.2.15161
[8]. Patil, S. N., Pawar, A. M., & Ladgaonkar, B. P. (2017a). Synthesis and deployment of nanoferrites to design embedded system for monitoring of ammonia gas. International Journal of Advances in Engineering & Technology (IJAET), 6(I) , 27-31.
[9]. Patil, S. N., Pawar, A. M., Deshpande, J. D., & Ladgaonkar, B. P. (2017b). Comparative study of ferrite based humidity sensor for smart sensor module design. International Research Journal of Science and Engineering (IRJSE), 1, 203-209.
[10]. Patil, S. N., Pawar, A. M., Tilekar, S. K., & Ladgaonkar, B. P. (2016). Investigation of magnesium substituted nano particle zinc ferrites for relative humidity sensors. Sensors and Actuators A: Physical, 244, 35-43.
[11]. Patil, S. N., Pawar, A. M., Tilekar, S.K., & Ladgaonkar, B. P. (2020b). Development of an embedded system for measurement of temperature based on polycrystalline ferrite material. International Journal of Electrical Electronics & Computer Science Engineering, 5(1), 152- 157.
[12]. Pawar, A. M., Deshpande, J. D., & Patil, S. N. (2020a). Development of an embedded system to measure soil moisture. i-manager's Journal on Embedded Systems, 9(1), 12-17. https://doi.org/10.26634/jes.9.1.17718
[13]. Pawar, A. M., Deshpande, J. D., & Patil, S. N. (2020b). Development of smart electronic system to implement smart home. i-manager's Journal on Digital Signal Processing, 8(1), 15-26. https://doi.org/10.26634/jdp.8.1. 17782
[14]. Pawar, A. M., Patil, S. N., & Ghatage, S. R. (2021). Development of wireless sensor node for automization in restaurant services. International Research Journal of Engineering and Technology (IRJET), 08(03), 3034-3037.
[15]. Pawar, A. M., Patil, S. N., & Ladgaonkar, B. P. (2014). Design and implementation of wireless sensor node for WSN for automatic meter reading. International Journal of Recent Research in Mathematics Computer Science and Information Technology, 1(1), 28-31.
[16]. Pawar, A. M., Patil, S. N., Powar, A. S., & Ladgaonkar, B. P. (2013). Wireless sensor network to monitor spatiotemporal thermal comfort of polyhouse environment. International Journal of Innovative Research in Science, Engineering and Technology, 2(10), 4866-4875.
[17]. Tilekar, S. K., Patil, S. N., Shaikh, S. S., Pawar, A. M., & Ladgaonkar, B. P. (2011). Development and implementation of an embedded system to measure initial permeability of magnetic materials. International Journal of Electronic Engineering Research, 3(1), 21-28.