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10 Composites forDrug-Eluting Devices: Emerging Biomedical Applications
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234. Kumar A, Parihar A, Basha SN, Panda U (2022d) Clinically available/under trial drugs and vaccines for treatment of SARS-COV-2. In: Computational Approaches for Novel Therapeutic and Diagnostic Designing to Mitigate SARS-CoV2 Infection. Elsevier, pp.451–488.
235. Kumar A, Parihar A, Panda U, Parihar DS (2022e) Microuidics-based point-of-care testing (POCT) devices in dealing with waves of COVID-19 pandemic: The emerging solution. ACS Appl Bio Mater 5:2046–2068.
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239. Davoodi, P., etal., Drug delivery systems for programmed and on-demand release. Advanced drug delivery reviews, 2018. 132: p.104–138.
240. Kumar A, Pathak A, Kumar A, Kumar A (2023a) Physics of Laser--Matter Interaction in Laser-Based Manufacturing. In: Laser-based Technologies for Sustainable Manufacturing. CRC Press, pp.45–54.
241. Kumar A, Sharma AK, Katiyar JK (2023b) State-of-the-Art in Sustainable Machining of Different Materials Using Nano Minimum Quality Lubrication (NMQL). Lubricants 11:64.
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243. Kumar S, Verma RK, Kumar A, Patel VK (2022g) Importance of Chemically Treated Natural Fibers in the Fabrication of Natural Fiber Reinforced Polymer Composites. Trends Fabr Polym Polym Compos 10–11.
244. Leventini SD, Martin-Gutierrez BS, Kumar A, Mittman AS, Kim SM, Martini A (2022) Tactile Perception of Vellum Quantied by Friction and Surface Roughness. Tribol Lett 70:127.
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253. Mehra AK, Saini R, Kumar A (2021) The effect of bre contents on mechanical and mois­ture absorption properties of gourd sponge/coir bre reinforced epoxy hybrid composites. Compos Commun 25:100732.
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256. Parmar V, Kumar A, Mani Sankar M, Datta S, Vijaya Prakash G, Mohanty S, Kalyanasundaram D (2018) Oxidation facilitated antimicrobial ability of laser micro-tex­tured titanium alloy against gram-positive Staphylococcus aureus for biomedical applica­tions. J Laser Appl 30.
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264. Lucignani, G., Nanoparticles for concurrent multimodality imaging and therapy: the dawn of new theragnostic synergies. European journal of nuclear medicine and molecular imaging,
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265. Domenico, A., etal., De novo drug design of targeted chemical libraries based on articial intelligence and pair-based multiobjective optimization. Journal of Chemical Information and Modeling, 2020. 60(10): p.4582–4593.
266. Saurabh Gupta, Ruchika Saini, Abhishek Kumar, Prateek Shrivastava, (2020) Performance Analysis of Gudgeon Pin of Various Cross Sections by FEM. Int J Recent Technol Eng 8:4569–4573.
267. Shrivastava Prateek SR, Kumar A, others (2020) Investigation of Torsional Rod to Minimize Vibration in Automobile using ANSYS.In: 2020 1st International Conference on Innovative Research in Applied Science, Engineering and Technology (IRASET). pp.1–6.
268. Singh M, Kumar A, Khan AR (2020) Capillary as a liquid diode. Phys Rev Fluids 5:102101.
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270. Subramanian Y, Gajendiran J, Veena R, Azad AK, Sabarish VCB, Muhammed Ali SA, Kumar A, Gubendiran RK (2023) Structural, Photoabsorption and Photocatalytic Characteristics of BiFeO3-WO3 Nanocomposites: An Attempt to Validate the Experimental Data Through SVM-Based Articial Intelligence (AI). J Electron Mater 1–11.
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Chapter 11
Biological Smart Biomaterials: Materials forBiomedical Applications
SaswatChowdhury , NipunJain , YusufOlatunjiWaidi , RanjitBarua , SamirDas , ArbindPrasad , andSudiptoDatta
Abstract In the Biomedical engineering domain, the use of smart biomaterials has
a huge impact. These biomaterials own different features that respond to the sur­rounding changes, allowing them to be used in various biomedical therapeutic appli­cations. They are sensitive to external stimulations like temperature, light, pH, magnetic and electric elds, etc. Also, these materials are biocompatible, biodegrad­able, and less expensive. The development, analysis, and synthesis of these materi­als have shown notable progress in biomedical applications in the past few decades. These SMART materials are used to develop wound healing scaffolds, drug delivery systems, and implants. SMART materials have huge opportunities for changing bio­logical applications. In this book chapter, we will briey discuss various SMART materials, their advancement in the biomedical engineering domain, applications of these materials with 3D and 4D bioprinting, the challenges, and prospects.
Saswat Chowdhury, Nipun Jain and Yusuf Olatunji Waidi contributed equally with all other contributors.
S. Chowdhury Department of Bioengineering, Indian Institute of Science, Bangalore, Karnataka, India e-mail: saswatc@iisc.ac.in
N. Jain · Y. O. Waidi · S. Datta (*) Department of Materials Engineering, Indian Institute of Science, Bangalore, Karnataka, India e-mail: nipunjain@iisc.ac.in; yusufwaidi@iisc.ac.in
R. Barua Centre for Healthcare Science and Technology, Indian Institute of Engineering Science and Technology, Howrah, West Bengal, India
S. Das Biomaterials and Tissue Engineering Lab, School of Medical Science and Technology Indian Institute of Technology, Kharagpur, West Bengal, India
A. Prasad Mechanical Engineering Department, Katihar Engineering College (Under Department of Science, Technology and Technical Education, Government of Bihar), Katihar, Bihar, India
A. Kumar et al. (eds.), Applications of Biotribology in Biomedical Systems,
https://doi.org/10.1007/978-3-031-58327-8_11
313© The Author(s), under exclusive license to Springer Nature Switzerland AG 2024
314
S. Chowdhury et al.
Keywords Smart biomaterials · 3D bioprinting · 4D printing · Shape memory alloy · Polymers · Tissue engineering

11.1 Introduction

Responding to stimulation is a fundamental process in the scientic world. According to nature’s lessons, researchers have created valuable substances respon­sive to external response change. These retaliations emerge as alterations to shape, surface properties, solubility, the creation of a complicated structure, a sol-gel tran­sition, and so on. The adjective “Smart” means the substances are able to notice uctuations in surroundings and later act upon these modications in a predened fashion [1]. Smart materials can refer to materials that can change their shape, func­tion, or any other property in a controlled fashion upon external stimulation exter­nally. In the biological context, the smart material in question also needs to be biocompatible, i.e., it should not elicit any unwanted response from the tissue. Considering that the biological systems are dynamic in nature, the biomaterials must also be able to modify their properties based on the stimulus, externally imposed, or changes in the surrounding milieu. The stimulus can range from physi­cal, such as heat, magnetic eld, light, electrical, and mechanical strain, to chemi­cal, such as pH, water, and analyte concentration. The change in the property can either be reversible, i.e., the material can recover to its initial state upon withdrawal of the external stimulus, or irreversible, which means the material is permanently locked in the changed state. The most widely used class of smart substances are shape-memory alloys and polymers [2]. Apart from these, there are other special classes of smart materials, such as self-healing polymers, water-responsive shape­changing hydrogels, shape-changing composites, piezoelectric materials, etc.
The transitions across different phases of the smart material demonstrate various characteristics due to changes in temperature or loading conditions. The shape memory effect describes how the structures return to their predened shapes when heated. Superelasticity describes the phenomena in which the structures undertake considerable deformations but still restore their shape following unloading [3]. The latest developments in stimuli-responsive design have opened the door to new bio­medical uses. Stimuli-responsive alterations allow for their innovative uses in deliv­ering medicines, biological engineering, and biomimetic actuators. This chapter deals with different classes of smart materials, their principles of change in prop­erty, stimulation, the interaction of the material with stimulus, the role of modeling in property change, and nally, the biological applications of these smart materials. The focus is restricted to a brief review of the technology, material requirements, classication of smart materials, and application.
11 Biological Smart Biomaterials: Materials forBiomedical Applications
315

11.2 Shape Memory Alloys (SMA)

The fascinating journey of shape-memory alloys (SMA) started in 1932 with Chang and Read’s discovery of a reversible phase transformation in AuCd. However, prac­tical applications only took off in 1962 when Buechler etal. stumbled upon the shape memory effect in NiTi (Nitinol) at the Naval Ordnance Laboratory. Nitinol quickly rose to prominence due to its superior thermomechanical properties and superelasticity compared to other SMAs. At its core, the magic of SMAs lies in their ability to exist in two distinct phases: austenite at high temperatures with a cubic structure and martensite at lower temperatures, which can adopt various asymmetric parallelogram structures (up to 24 variations). SMA exhibits fascinating properties like shape memory and superelasticity, triggered by temperature or stress-induced phase transformations between two distinct crystal structures: austenite and mar­tensite. The shape memory effect emerges when a deformed SMA, cooled to stabi­lize the martensitic phase, is reheated. This triggers a transformation to the austenite phase, restoring the material to its original “memory” shape. In contrast, superelas­ticity arises when an austenitic SMA is subjected to stress. This stress induces a detwinning mechanism within the martensitic phase, where different martensite variants transform into a single variant that maximizes elongation. Notably, the twinned martensitic structure is weaker due to its parallelogram arrangement, allow­ing signicant deformation. Conversely, the austenitic phase exhibits greater stress resistance with its single possible orientation.
SMA are versatile metals with unique properties like shape memory, superelas­ticity, and damping. These properties make them valuable in diverse elds [4], from aerospace (tougher composites) [5] to medicine (smart stents). SMAs can function as memory elements, actuators, or superelastic materials, expanding their applica­tion potential [6]. SMA shines in the biomedical world due to their biocompatibility, preventing infections and seamlessly integrating with the body. Their impressive mechanical properties make them ideal for implants in orthopedics and orthodontics [7]. Simon lter, a pioneering SMA device, lters blood clots and has inspired numerous next-generation devices like stents, cava lters, and even articial heart activators. These “smart” materials, with their ability to deform and regain shape on cue, these “smart” materials offer minimally invasive alternatives to traditional sur­geries, saving lives and revolutionizing healthcare [8]. SMAs bone plates speed healing with temperature-activated compression, which is ideal for facial bones and the spine [9]. They offer a tight t, stable pressure, and precise vertebral positioning, perfect for areas where casts are impractical; even physiotherapy benets from their controlled stress, aiding muscle recovery [10]. NiTi alloys revolutionized orthodon­tics (1915) with their unique “memory” and gentle forces. These smart wires, stable in the mouth, gradually guide teeth into alignment, making treatment more comfort­able and efcient. They also nd use in implants, ensuring better xation thanks to the shape memory effect. Beyond dentistry, shape memory polyurethanes with phase-separated structures hold promise for various applications [11]. Additionally,
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