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3D Nanocomposite with High Aspect Ratio Based on Polyaniline Decorated with Silver NPs: Synthesis and Application as Electrochemical Glucose Sensor

ORCID
0000-0002-9920-0744
Affiliation
Institute of Chemistry, Saint-Petersburg State University, Ulyanovskaya st. 5, Saint-Petersburg 198504, Russia
Vasileva, Anna A.;
Affiliation
Institute of Chemistry, Saint-Petersburg State University, Ulyanovskaya st. 5, Saint-Petersburg 198504, Russia
Mamonova, Daria V.;
ORCID
0000-0003-1168-771X
Affiliation
Interdisciplinary Resource Center for Nanotechnology, Research Park, Saint-Petersburg State University, Ulyanovskaya 1, Saint-Petersburg 198504, Russia
Mikhailovskii, Vladimir;
Affiliation
Department of Physics, Saint-Petersburg State University, Ulyanovskaya st. 3, Saint-Petersburg 198504, Russia
Petrov, Yuri V.;
ORCID
0000-0003-1629-7868
Affiliation
Almazov National Medical Research Centre, Akkuratova st. 2, Saint-Petersburg 197341, Russia
Toropova, Yana G.;
Affiliation
Center for Optical and Laser Materials Research, Saint-Petersburg State University, Ulyanovskaya 5, Saint-Petersburg 198504, Russia
Kolesnikov, Ilya E.;
ORCID
0000-0003-1967-2766
Affiliation
Max Planck Institute for the Science of Light, Staudtstr. 2, 91058 Erlangen, Germany
Leuchs, Gerd;
ORCID
0000-0002-1053-6410
Affiliation
Institute of Chemistry, Saint-Petersburg State University, Ulyanovskaya st. 5, Saint-Petersburg 198504, Russia
Manshina, Alina A.

In this paper, we present a new methodology for creating 3D ordered porous nanocomposites based on anodic aluminum oxide template with polyaniline (PANI) and silver NPs. The approach includes in situ synthesis of polyaniline on templates of anodic aluminum oxide nanomembranes and laser-induced deposition (LID) of Ag NPs directly on the pore walls. The proposed method allows for the formation of structures with a high aspect ratio of the pores, topological ordering and uniformity of properties throughout the sample, and a high specific surface area. For the developed structures, we demonstrated their effectiveness as non-enzymatic electrochemical sensors on glucose in a concentration range crucial for medical applications. The obtained systems possess high potential for miniaturization and were applied to glucose detection in real objects—laboratory rat blood plasma.

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