Advances in magnetoelectric nanostructures for biomedicine: A comprehensive review; Materials Today Chemistry; Vol. 52
| Parent link: | Materials Today Chemistry.— .— Amsterdam: Elsevier Vol. 52.— 2026.— Article number 103355, 35 p. |
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| Korporativní autor: | |
| Další autoři: | , , , , , , , , |
| Shrnutí: | Title screen Magnetoelectric (ME) nanostructures, responsive to low-intensity magnetic fields, have emerged as promising multifunctional platforms for diverse biomedical applications, including targeted drug delivery, neural stimulation, cancer therapy, bioimaging, and nanocatalysis. Their magnetic sensitivity enables precise spatial and temporal control over biomolecule delivery, offering advantages over traditional chemical, biological, or physical interventions. ME coupling further supports non-invasive electrical stimulation, enabling on-demand drug release, catalytic activity, and regulation of cellular behaviors such as stem cell differentiation, neural activation, and apoptosis. While prior reviews have focused on ME nanomaterials in 2D and 3D biomedical contexts, a comprehensive examination of their design, structure, composition, characterization, and modeling remains lacking. This review fills that gap by presenting a detailed overview of recent advances in ME nanostructures – highlighting fabrication techniques, physical properties, and performance modeling across diverse morphologies, anisotropies, and compositions. Current challenges and future directions for ME nanomaterials in nanomedicine are also discussed. The review underscores the high potential of ME-based nanostructures to integrate electrical stimulation with bioimaging, biosensing, and therapeutic functions, thereby paving the way for the next-generation of multifunctional tools in nanomedicine Текстовый файл AM_Agreement |
| Jazyk: | angličtina |
| Vydáno: |
2026
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| Témata: | |
| On-line přístup: | https://doi.org/10.1016/j.mtchem.2026.103355 |
| Médium: | Elektronický zdroj Kapitola |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=687776 |
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| 200 | 1 | |a Advances in magnetoelectric nanostructures for biomedicine: A comprehensive review |f R. V. Chernozem, L. E. Shlapakova, P. V. Chernozem [et al.] | |
| 203 | |a Текст |c электронный |b визуальный | ||
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| 300 | |a Title screen | ||
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| 330 | |a Magnetoelectric (ME) nanostructures, responsive to low-intensity magnetic fields, have emerged as promising multifunctional platforms for diverse biomedical applications, including targeted drug delivery, neural stimulation, cancer therapy, bioimaging, and nanocatalysis. Their magnetic sensitivity enables precise spatial and temporal control over biomolecule delivery, offering advantages over traditional chemical, biological, or physical interventions. ME coupling further supports non-invasive electrical stimulation, enabling on-demand drug release, catalytic activity, and regulation of cellular behaviors such as stem cell differentiation, neural activation, and apoptosis. While prior reviews have focused on ME nanomaterials in 2D and 3D biomedical contexts, a comprehensive examination of their design, structure, composition, characterization, and modeling remains lacking. This review fills that gap by presenting a detailed overview of recent advances in ME nanostructures – highlighting fabrication techniques, physical properties, and performance modeling across diverse morphologies, anisotropies, and compositions. Current challenges and future directions for ME nanomaterials in nanomedicine are also discussed. The review underscores the high potential of ME-based nanostructures to integrate electrical stimulation with bioimaging, biosensing, and therapeutic functions, thereby paving the way for the next-generation of multifunctional tools in nanomedicine | ||
| 336 | |a Текстовый файл | ||
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| 461 | 1 | |t Materials Today Chemistry |c Amsterdam |n Elsevier | |
| 463 | 1 | |t Vol. 52 |v Article number 103355, 35 p. |d 2026 | |
| 610 | 1 | |a Magnetoelectric effect | |
| 610 | 1 | |a Wireless electrical stimulation | |
| 610 | 1 | |a Nanomaterials | |
| 610 | 1 | |a Biomaterials | |
| 610 | 1 | |a Nanomedicine | |
| 610 | 1 | |a электронный ресурс | |
| 610 | 1 | |a труды учёных ТПУ | |
| 701 | 1 | |a Chernozem |b R. V. |c physicist |c Associate Professor of Tomsk Polytechnic University |f 1992- |g Roman Viktorovich |9 19499 | |
| 701 | 1 | |a Shlapakova |b L. E. |c chemical engineer |c Research Engineer of Tomsk Polytechnic University |f 1999- |g Lada Evgenievna |9 88580 | |
| 701 | 1 | |a Chernozem |b P. V. |c specialist in the field of informatics and computer technology |c Research Engineer of Tomsk Polytechnic University |f 1997- |g Polina Viktorovna |9 22733 | |
| 701 | 1 | |a Urakova |b A. O. |c specialist in the field of material science |c Laboratory assistant of Tomsk Polytechnic University |f 2002- |g Alina Olegovna |9 88596 | |
| 701 | 1 | |a Surmeneva |b M. A. |c specialist in the field of material science |c engineer-researcher of Tomsk Polytechnic University, Associate Scientist |f 1984- |g Maria Alexandrovna |9 15966 | |
| 701 | 1 | |a Ciofani |b G. |g Gianni | |
| 701 | 1 | |a Pucci |b C. |g Carlotta | |
| 701 | 1 | |a Attilio |b M. |g Marino | |
| 701 | 1 | |a Surmenev |b R. A. |c physicist |c Associate Professor of Tomsk Polytechnic University, Senior researcher, Candidate of physical and mathematical sciences |f 1982- |g Roman Anatolievich |9 15957 | |
| 712 | 0 | 2 | |a Национальный исследовательский Томский политехнический университет |b Исследовательская школа химических и биомедицинских технологий |c (2017- ) |9 28334 |
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