Insights of prototyping Hierarchical bottom-up of optical active materials for multimodal energy coupling and functional biophotonic nano-, microwearable devices

Sofia Mickaela Martinez, Cecilia S. Tettamanti, M. Valeria Amé, Daniela Alejandra Quinteros, A. Guillermo Bracamonte

Article ID: 11474
Vol 8, Issue 3, 2025

VIEWS - 45 (Abstract)

Abstract


In this review are developed insights from the current research work to develop the concept of functional materials. This is understood as real modified substrates for varied applications. So, functional and modified substrates focused on nanoarchitectures, microcapsules, and devices for new nanotechnologies highlighting life sciences applications were revised. In this context, different types of concepts to proofs of concepts of new materials are shown to develop desired functions. Thus, it was shown that varied chemicals, emitters, pharmacophores, and controlled nano-chemistry were used for the design of nanoplatforms to further increase the sizes of materials. In this regard, the prototyping of materials was discussed, affording how to afford the challenge in the design and fabrication of new materials. Thus, the concept of optical active materials and the generation of a targeted signal through the substrate were developed. Moreover, advanced concepts were introduced, such as the multimodal energy approach by tuning optical coupling from molecules to the nanoscale within complex matter composites. These approaches were based on the confinement of specific optical matter, considering molecular spectroscopics and nano-optics, from where the new concept nominated as metamaterials was generated. In this manner, fundamental and applied research by the design of hierarchical bottom-up materials, controlling molecules towards nanoplatforms and modified substrates, was proposed. Therefore, varied accurate length scales and dimensions were controlled. Finally, it showed proofs of concepts and applications of implantable, portable, and wearable devices from cutting-edge knowledge to the next generation of devices and miniaturized instrumentation.


Keywords


nanomaterials; modified substrates; nano-optics; nanophotonics; nanodevices; microdevices

Full Text:

PDF


References


1.       Kathuria Y. Chapter 6. Laser-produced Rapid Prototyping in Manufacturing. In: International Trends in Applied Optics. SPIE Digital Library; 2002. pp. 1-14.

2.       Satzinger V, Schmidt V, Kuna L, et al. Rapid prototyping of micro-optics on organic light emitting diodes and organic photo cells by means of two-photon 3D lithography and nano-imprint lithography. Micro-Optics 2008. 2008; 6992: 699217. doi: 10.1117/12.781129

3.       Maniewski P, Harvey CM, Mühlberger K, et al. Rapid prototyping of silica optical fibers. Optical Materials Express. 2022; 12(7): 2426. doi: 10.1364/ome.459400

4.       Liu J, Yang Q, Shou Y, et al. Metasurface-Assisted Quantum Nonlocal Weak-Measurement Microscopy. Physical Review Letters. 2024; 132(4). doi: 10.1103/physrevlett.132.043601

5.       Keskinbora K. Prototyping Micro- and Nano-Optics with Focused Ion Beam Lithography. SPIE; 2019. doi: 10.1117/3.2531118

6.       Selin C, Boradkar P. Prototyping Nanotechnology: A Transdisciplinary Approach to Responsible Innovation. Journal of Nano Education. 2010; 2(1): 1-12. doi: 10.1166/jne.2010.1002

7.       Yao K, Zhong H, Liu Z, et al. Plasmonic Metal Nanoparticles with Core–Bishell Structure for High-Performance Organic and Perovskite Solar Cells. ACS Nano. 2019; 13(5): 5397-5409. doi: 10.1021/acsnano.9b00135

8.       Bandari VK, Schmidt OG. A bright future for micro-LED displays. Light: Science & Applications. 2024; 13(1). doi: 10.1038/s41377-024-01683-z

9.       Kumar G, Lin CC, Kuo HC, et al. Enhancing photoluminescence performance of perovskite quantum dots with plasmonic nanoparticles: insights into mechanisms and light-emitting applications. Nanoscale Advances. 2024; 6(3): 782-791. doi: 10.1039/d3na01078c

10.     Mark AG, Gibbs JG, Lee TC, et al. Hybrid nanocolloids with programmed three-dimensional shape and material composition. Nature Materials. 2013; 12(9): 802-807. doi: 10.1038/nmat3685

11.     Li Y, Xia H, Xu J. Synthesis and Applications of Functional Nanomaterials. Journal of Physics: Conference Series. 2021; 2133(1): 012006. doi: 10.1088/1742-6596/2133/1/012006

12.     Bracamonte, AG, Invited Guest Editor. Tuning Enhanced signaling from Optical active Nanoplatforms for Biophotonics and Bio-analytical applications. Available online: https://www.frontiersin.org/journals/chemistry (aceesed on 2 November 2024).

13.     Advances in Research on Graphene and Related Materials: From Preparation and tuning properties to Applications. Materials.

14.     Bracamonte AG. Frontiers in Nano- and Micro-device Design for Applied Nanophotonics, Biophotonics and Nanomedicine. Bentham Science Publishers (UAE); 2021.

15.     Lv X, Zhang Y, Wang X, et al. Multilayer Graphene Oxide Supported ZIF-8 for Efficient Removal of Copper Ions. Nanomaterials. 2022; 12(18): 3162. doi: 10.3390/nano12183162

16.     Ali SM, Noghanian S, Khan ZU, et al. Wearable and Flexible Sensor Devices: Recent Advances in Designs, Fabrication Methods, and Applications. Sensors. 2025; 25(5): 1377. doi: 10.3390/s25051377

17.     Yan Y, Song C, Shen Z, et al. Programming structural and magnetic anisotropy for tailored interaction and control of soft microrobots. Communications Engineering. 2024; 3(1). doi: 10.1038/s44172-023-00145-5

18.     Lu L, Chen N, Yuan B, et al. Illuminating the invisible: Advancing bio-imaging and diagnosis with modified near-infrared fluorescents. Applied Materials Today. 2024; 38: 102210. doi: 10.1016/j.apmt.2024.102210

19.     Hansen AE, Henriksen JR, Jølck RI, et al. Multimodal soft tissue markers for bridging high-resolution diagnostic imaging with therapeutic intervention. Applied Materials Today. 2024; 38: 1-19.

20.     Lin TE, Rapino S, Girault HH, et al. Electrochemical imaging of cells and tissues. Chemical Science. 2018; 9(20): 4546-4554. doi: 10.1039/c8sc01035h

21.     Schneider C, Nikitichev D, Xia W, et al. Multispectral tissue mapping: developing a concept for the optical evaluation of liver disease. Journal of Medical Imaging. 2020; 7(06). doi: 10.1117/1.jmi.7.6.066001

22.     Dong D, Huang X, Li L, et al. Super-Resolution Fluorescence Assisted Diffraction Computational Tomography Reveals the Three-Dimensional Landscape of Cellular Organelle Interactome. Imaging and Applied Optics Congress. Published online 2020: HF1G.6. doi: 10.1364/dh.2020.hf1g.6

23.     Matsumoto K, Mitchell JB, Krishna MC. Multimodal Functional Imaging for Cancer/Tumor Microenvironments Based on MRI, EPRI, and PET. Molecules. 2021; 26(6): 1614. doi: 10.3390/molecules26061614

24.     Chen Y, Lou Z, Chen Z, et al. Magnetic–Fluorescent Responsive Janus Photonic Crystal Beads for Self-Destructive Anti-counterfeiting. Langmuir. 2022; 38(46): 14387-14399. doi: 10.1021/acs.langmuir.2c02546

25.     Heintz A, Sold S, Wühler F, et al. Design of a Multimodal Imaging System and Its First Application to Distinguish Grey and White Matter of Brain Tissue. A Proof-of-Concept-Study. Applied Sciences. 2021; 11(11): 4777. doi: 10.3390/app11114777

26.     Xiao Z, Wang K, Lu X, et al. Fabrication of multimodal optical imaging agents through direct triplet energy transfer from rare-earth doped nanoparticles. Journal of Luminescence. 2025; 280: 121092. doi: 10.1016/j.jlumin.2025.121092

27.     Sun Y, Guo Z. Recent advances of bioinspired functional materials with specific wettability: from nature and beyond nature. Nanoscale Horizons. 2019; 4(1): 52-76. doi: 10.1039/c8nh00223a

28.     Hodson R. Precision medicine. Nature. 2016; 537(7619): S49-S49. doi: 10.1038/537s49a

29.     Liang P, Ding C, Sun H, et al. Correction of β-thalassemia mutant by base editor in human embryos. Protein & Cell. 2017; 8(11): 811-822. doi: 10.1007/s13238-017-0475-6

30.     Zeggini E, Gloyn AL, Barton AC, et al. Translational genomics and precision medicine: Moving from the lab to the clinic. Science. 2019; 365(6460): 1409-1413. doi: 10.1126/science.aax4588

31.     Wang D, Heiss E, Šmejkal K, et al. Bioactive Molecules and Their Mechanisms of Action. Molecules. 2019; 24(20): 3752. doi: 10.3390/molecules24203752

32.     Syed AM, Ciling A, Taha TY, et al. Omicron mutations enhance infectivity and reduce antibody neutralization of SARS-CoV-2 virus-like particles. Proceedings of the National Academy of Sciences. 2022; 119(31). doi: 10.1073/pnas.2200592119

33.     Yao H, Yang Z, Fan X, et al. A light-tunable thermoresponsive supramolecular switch with reversible and complete “off-on”/“on-off” conversion. Materials Chemistry Frontiers. 2019; 3(6): 1168-1173. doi: 10.1039/c9qm00141g

34.     Rosenblum D, Peer D. Omics-based nanomedicine: The future of personalized oncology. Cancer Letters. 2014; 352(1): 126-136. doi: 10.1016/j.canlet.2013.07.029

35.     Kirschen WID, Hutchinson W, Bracamonte AG. Conjugation Reactions of Hybrid Organosilanes for Nanoparticles and surface modifications. J. Chem. Res. Adv. (JCRA). 2021; 2(1): 6-15.

36.     Huynh MC, Thanh Diep T, Le TTT, et al. Advances in colloidal dispersions: A review. Journal of Dispersion Science and Technology. 2019; 41(4): 479-494. doi: 10.1080/01932691.2019.1591970

37.     Luna RGP, Sofia M, Cecilia T, et al. Nano-chemistry and Bio-conjugation with perspectives on the design of Nano-Immune platforms, vaccines and new combinatorial treatments. Journal of Vaccines and Immunology. 2021; 049-056. doi: 10.17352/jvi.000047

38.     Nguyen HL, Nguyen HN, Nguyen HH, et al. Nanoparticles: synthesis and applications in life science and environmental technology. Advances in Natural Sciences: Nanoscience and Nanotechnology. 2014; 6(1): 015008. doi: 10.1088/2043-6262/6/1/015008

39.     Inda A, Martinez SM, Tettamanti CS, et al. Chapter 7 - Nanoengineering multifunctional organized systems highlighting hybrid micelles, vesicles and lipidic aggregates towards higher sized structures for theranostics perspectives.Theranostics Nanomaterials in Drug Delivery. 2025: 111-132. https://doi.org/10.1016/B978-0-443-22044-9.00020-6

40.     Dalacu D, Poole PJ, Williams RL. Nanowire-based sources of non-classical light. Nanotechnology. 2019; 30(23): 232001. doi: 10.1088/1361-6528/ab0393

41.     Gontero D, Veglia AV, Bracamonte AG, et al. Synthesis of ultraluminescent gold core-shell nanoparticles as nanoimaging platforms for biosensing applications based on metal-enhanced fluorescence. RSC Advances. 2017; 7(17): 10252-10258. doi: 10.1039/c6ra27649k

42.     Bracamonte G. Advances in new Matter Properties and Applications of Hybrid Graphene-based Metamaterials. Current Material Science. 2022; 15(3): 215–219.

43.     Bracamonte AG, Hutchinson W. Electronic Properties and Pseudo-Electromagnetic Fields of Highly Conjugated Carbon Nanostructures. Current Materials Science. 2022; 15(3): 204-214. doi: 10.2174/2666145414666211006124712

44.     Nie L, Nusantara AC, Damle VG, et al. Quantum monitoring of cellular metabolic activities in single mitochondria. Science Advances. 2021; 7(21). doi: 10.1126/sciadv.abf0573

45.     Choueiri RM, Galati E, Thérien-Aubin H, et al. Surface patterning of nanoparticles with polymer patches. Nature. 2016; 538(7623): 79-83. doi: 10.1038/nature19089

46.     Meng L, Zeng T, Jin Y, et al. Surface-Modified Substrates for Quantum Dot Inks in Printed Electronics. ACS Omega. 2019; 4(2): 4161-4168. doi: 10.1021/acsomega.9b00195

47.     Du J, Li Y, Wang J, et al. Mechanically Robust, Self-Healing, Polymer Blends and Polymer/Small Molecule Blend Materials with High Antibacterial Activity. ACS Applied Materials & Interfaces. 2020; 12(24): 26966-26972. doi: 10.1021/acsami.0c06591

48.     Elsayed SM, Widyaya VT, Shafi Y, et al. Bifunctional Bioactive Polymer Surfaces with Micrometer and Submicrometer-sized Structure: The Effects of Structure Spacing and Elastic Modulus on Bioactivity. Molecules. 2019; 24(18): 3371. doi: 10.3390/molecules24183371

49.     Cellesi F, Tirelli N. Injectable nanotechnology. Injectable Biomaterials. Published online 2011: 298-322. doi: 10.1533/9780857091376.3.298

50.     Cheng Z, Shurer CR, Schmidt S, et al. The surface stress of biomedical silicones is a stimulant of cellular response. Science Advances. 2020; 6(15). doi: 10.1126/sciadv.aay0076

51.     Li Y, Chen X, Jin R, et al. Injectable hydrogel with MSNs/microRNA-21-5p delivery enables both immunomodification and enhanced angiogenesis for myocardial infarction therapy in pigs. Science Advances. 2021; 7(9). doi: 10.1126/sciadv.abd6740

52.     M. Rabanel J, Aoun V, Elkin I, Mokhtar M, Hildgen P. Drug-Loaded Nanocarriers: Passive Targeting and Crossing of Biological Barriers. Current Medicinal Chemistry. 2012; 19(19): 3070-3102. doi: 10.2174/092986712800784702

53.     Jyothi NVN, Prasanna PM, Sakarkar SN, et al. Microencapsulation techniques, factors influencing encapsulation efficiency. Journal of Microencapsulation. 2010; 27(3): 187-197. doi: 10.3109/02652040903131301

54.     Parlak O, Keene ST, Marais A, et al. Molecularly selective nanoporous membrane-based wearable organic electrochemical device for noninvasive cortisol sensing. Science Advances. 2018; 4(7). doi: 10.1126/sciadv.aar2904

55.     Goodfellow KM, Chakraborty C, Beams R, et al. Direct On-Chip Optical Plasmon Detection with an Atomically Thin Semiconductor. Nano Letters. 2015; 15(8): 5477-5481. doi: 10.1021/acs.nanolett.5b01898

56.     Chen S, Wang F, Kuang F, et al. Femtosecond Pulsed Fiber Laser by an Optical Device Based on NaOH-LPE Prepared WSe2 Saturable Absorber. Nanomaterials. 2022; 12(16): 2747. doi: 10.3390/nano12162747

57.     Bracamonte AG. Design of new High Energy near Field Nanophotonic materials for far Field applications. In: Advances in Nanocomposite Materials for Environmental and Energy Harvesting Applications. Engineering Materials. Springer Nature, Switzerland; 2022. pp. 859-920.

58.     Brouard D, Ratelle O, Bracamonte AG, et al. Direct molecular detection of SRY gene from unamplified genomic DNA by metal-enhanced fluorescence and FRET. Analytical Methods. 2013; 5(24): 6896. doi: 10.1039/c3ay41428k

59.     Salinas C, Amé MV, Bracamonte AG. Synthetic non-classical luminescence generation by enhanced silica nanophotonics based on nano-bio-FRET. RSC Advances. 2020; 10(35): 20620-20637. doi: 10.1039/d0ra02939d

60.     Fu Y, Zhang J, Lakowicz JR. Silver-enhanced fluorescence emission of single quantum dot nanocomposites. Chem Commun. 2009; (3): 313-315. doi: 10.1039/b816736b

61.     Purcell EM. Spontaneous emission probabilities at radio frequencies. Phys. Rev. 1946; 69: 681.

62.     Humar M, Kwok SJJ, Choi M, et al. Toward biomaterial-based implantable photonic devices. Nanophotonics. 2017; 6(2): 414-434. doi: 10.1515/nanoph-2016-0003

63.     Wang Z, Bai H, Yu W, et al. Flexible bioelectronic device fabricated by conductive polymer–based living material. Science Advances. 2022; 8(25). doi: 10.1126/sciadv.abo1458

64.     Roblyer D. Perspective on the increasing role of optical wearables and remote patient monitoring in the COVID-19 era and beyond. Journal of Biomedical Optics. 2020; 25(10). doi: 10.1117/1.jbo.25.10.102703

65.     Maksimović M. The roles of nanotechnology and internet of nano things in healthcare transformation. TecnoLógicas. 2017; 20(40): 139-153. doi: 10.22430/22565337.720

66.     Luo Y, Abidian MR, Ahn D, et al. Technology Roadmap for Flexible Sensors. ACS Nano. 2023; 17(6): 5211-5295.

67.     Salminger S, Sturma A, Hofer C, et al. Long-term implant of intramuscular sensors and nerve transfers for wireless control of robotic arms in above-elbow amputees. Science Robotics. 2019; 4(32). doi: 10.1126/scirobotics.aaw6306

68.     Larivière-Loiselle C, Bélanger E, Marquet P. Polychromatic digital holographic microscopy: a quasicoherent-noise-free imaging technique to explore the connectivity of living neuronal networks. Neurophotonics. 2020; 7(04). doi: 10.1117/1.nph.7.4.040501

69.     Susaki EA, Shimizu C, Kuno A, et al. Versatile whole-organ/body staining and imaging based on electrolyte-gel properties of biological tissues. Nature Communications. 2020; 11: 1-10.

70.     Ludvig N. Rationale of replacing the upper part of the human skull with a biocompatible, re-chargeable, re-fillable and re-cleanable electrical/molecular device to safely and effectively treat and/or cure severe, currently intractable brain disorders. Academia Letters. Published online August 31, 2021. doi: 10.20935/al3355

71.     Bracamonte AG. Neurophotonics by controlled signal tracking from chemical structures, and Biostructures towards the Nanoscale and beyond. Frontiers in Drug, Chemistry and Clinical Research. 2022; 5(1). doi: 10.15761/fdccr.1000159

72.     Schulz M, Probst S, Calabrese S, et al. Versatile Tool for Droplet Generation in Standard Reaction Tubes by Centrifugal Step Emulsification. Molecules. 2020; 25(8): 1914. doi: 10.3390/molecules25081914

73.     Dahiya UR, Gupt GD, Dhaka RS, et al. Functionalized Co2FeAl Nanoparticles for Detection of SARS CoV-2 Based on Reverse Transcriptase Loop-Mediated Isothermal Amplification. ACS Applied Nano Materials. 2021; 4(6): 5871-5882. doi: 10.1021/acsanm.1c00782

74.     Bracamonte AG. Microarrays towards nanoarrays and the future Next Generation of Sequencing methodologies (NGS). Sensing and Bio-Sensing Research. 2022; 37: 100503. doi: 10.1016/j.sbsr.2022.100503




DOI: https://doi.org/10.24294/can11474

Refbacks

  • There are currently no refbacks.


Copyright (c) 2025 Author(s)

License URL: https://creativecommons.org/licenses/by/4.0/

This site is licensed under a Creative Commons Attribution 4.0 International License.