| Literature DB >> 28883346 |
Muhammad H Asif1, Omer Nur2, Magnus Willander3, Peter Strålfors4, Cecilia Brännmark5, Fredrik Elinder6, Ulrika H Englund7, Jun Lu8, Lars Hultman9.
Abstract
This paper presents the growth and structure of ZnO nanorods on a sub-micrometer glass pipette and their application as an intracellular selective ion sensor. Highly oriented, vertical and aligned ZnO nanorods were grown on the tip of a borosilicate glass capillary (0.7 µm in diameter) by the low temperature aqueous chemical growth (ACG) technique. The relatively large surface-to-volume ratio of ZnO nanorods makes them attractive for electrochemical sensing. Transmission electron microscopy studies show that ZnO nanorods are single crystals and grow along the crystal's c-axis. The ZnO nanorods were functionalized with a polymeric membrane for selective intracellular measurements of Na⁺. The membrane-coated ZnO nanorods exhibited a Na⁺-dependent electrochemical potential difference versus an Ag/AgCl reference micro-electrode within a wide concentration range from 0.5 mM to 100 mM. The fabrication of functionalized ZnO nanorods paves the way to sense a wide range of biochemical species at the intracellular level.Entities:
Keywords: HRTEM; ZnO nanorods; functionalization; intracellular sensor; membrane
Year: 2010 PMID: 28883346 PMCID: PMC5445763 DOI: 10.3390/ma3094657
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Field emission scanning electron microscope images at different magnifications of the Ag-coated glass capillary without (A) and with (B–D) grown ZnO nanorods using low temperature aqueous chemical solution growth.
Figure 2(A, D, E) TEM images; (B) EDX analysis; and (C) SAED pattern from typical ZnO nanorods.
Figure 3Schematic diagram illustrating the setup for the measurement of the intracellular Na+ concentration.
Figure 4A calibration curve showing the electrochemical potential difference between the Na+-selective ZnO nanorod and the Ag/AgCl reference microelectrodes versus the Na+ concentration.