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The reliable integration of carbon nanotube (CNT) electrodes in future neural probes requires a proper embedding of the CNTs to prevent damage and toxic contamination during fabrication and also to preserve their mechanical integrity during implantation. Here we describe a novel bottom-up embedding approach where the CNT microelectrodes are encased in SiO(2) and Parylene C with lithographically defined electrode openings. Vertically aligned CNTs are grown on microelectrode arrays using low-temperature plasma-enhanced chemical vapor deposition compatible with wafer-scale CMOS processing. Electrodes with 5, 10, and 25 μm diameter are realized. The CNT electrodes are characterized by electrochemical impedance spectroscopy and cyclic voltammetry and compared against cofabricated Pt and TiN electrodes. The superior performance of the CNTs in terms of impedance (≤4.8 ± 0.3 kΩ at 1 kHz) and charge-storage capacity (≥513.9 ± 61.6 mC/cm(2)) is attributed to an increased wettability caused by the removal of the SiO(2) embedding in buffered hydrofluoric acid. Infrared spectroscopy reveals an unaltered chemical fingerprint of the CNTs after fabrication. Impedance monitoring during biphasic current pulsing with increasing amplitudes provides clear evidence of the onset of gas evolution at CNT electrodes. Stimulation is accordingly considered safe for charge densities ≤40.7 mC/cm(2). In addition, prolonged stimulation with 5000 biphasic current pulses at 8.1, 40.7, and 81.5 mC/cm(2) increases the CNT electrode impedance at 1 kHz only by 5.5, 1.2, and 12.1%, respectively. Finally, insertion of CNT electrodes with and without embedding into rat brains demonstrates that embedded CNTs are mechanically more stable than non-embedded CNTs.
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http://dx.doi.org/10.1021/nn201609u | DOI Listing |
Langmuir
September 2025
College of Textile and Clothing Engineering, Soochow University, Suzhou 215123, PR China.
Sodium-ion batteries are promising candidates for large-scale energy storage due to their low cost and resource abundance. However, their cathode materials suffer from poor conductivity and limited cycling stability. Here, we report a Prussian blue (PB)-based cathode hybridized with carboxyl-functionalized carbon nanotubes (CNTs) via a glutamic acid-assisted in situ coordination route.
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September 2025
Institute of Chemistry, Academia Sinica, Taipei, 115201, Taiwan.
Achieving high capacitance while maintaining rapid charge transport and structural stability remains a major challenge in the design of battery-type supercapacitor electrodes. Herein, a molecularly engineered strategy is presented for constructing hierarchical hybrid electrodes by integrating petal-like NiCu-LDH nanosheets onto 3D HBC-x (x = H, F, OMe)-functionalized CNT paper via a one-step hydrothermal process. The incorporation of HBC effectively mitigates CNT agglomeration and constructs an interconnected conductive framework that enhances charge transport, shortens ion diffusion paths, and reduces internal resistance.
View Article and Find Full Text PDFACS Nano
September 2025
Department of Electrical and Computer Engineering, Sungkyunkwan University, Suwon 16419, Republic of Korea.
Vagus nerve stimulation (VNS) is a promising therapy for neurological and inflammatory disorders across multiple organ systems. However, conventional rigid interfaces fail to accommodate dynamic mechanical environments, leading to mechanical mismatches, tissue irritation, and unstable long-term interfaces. Although soft neural interfaces address these limitations, maintaining mechanical durability and stable electrical performance remains challenging.
View Article and Find Full Text PDFChemSusChem
September 2025
Institute of Organic Chemistry, Ulm University, Albert-Einstein-Allee 11, 89081, Ulm, Germany.
Organic battery electrode materials represent a sustainable alternative compared to most inorganic electrodes, yet challenges persist regarding their energy density and cycling stability. In this work, a new organic electrode material is described, which is obtained via ionothermal polymerization of low-cost starting materials, melem (2,5,8-triamino-tri-s-triazine) and perylenetetracarboxylic dianhydride (PTCDA). The resulting networked polymer Melem-PDI exhibits favorable thermal and electrochemical properties, prompting investigation into its performance as a positive electrode material in rechargeable lithium and magnesium batteries.
View Article and Find Full Text PDFSmall
September 2025
Centre for Interdisciplinary Research, D. Y. Patil Education Society (Deemed to be University), Kolhapur, Maharashtra, 416 006, India.
Developing efficient, sustainable, earth-abundant, cost-effective electrocatalysts is extremely challenging. Cobalt-iron-layered double hydroxide nanosheets (Co-Fe-LDH NSs) hybridized with carbon nanotubes (CNTs) lead to anchors Co-Fe-LDH-CNTs (CFC) self-assembly with a mesoporous morphology, expanded surface area, fast charge transfer kinetics, and high electrical conductivity. The resultant anchored CFC nanohybrid is highly active for electrocatalytic oxygen evolution reaction (OER), showing a lower overpotential of 221 and 313 mV at a current density of 10 and 25 mA cm, respectively, compared to pristine Co-Fe-LDH (339 and 391 mV), showcasing the significant role of CNTs in improving the electrocatalytic performance of pristine Co-Fe-LDH.
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