Method for preparing phospholipid nano/micron tube by using finger-shaped micro-electrode
A micro-electrode and micro-tube technology, applied in the field of preparing phospholipid tubes using finger-shaped micro-electrodes, to achieve the effects of less environmental pollution, expanded preparation range, and high yield
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Embodiment 1
[0014] 1) Electrode preparation and cleaning:
[0015] The prepared finger-shaped microelectrodes (with a width of 50-200 μm for fingers) were ultrasonically cleaned with absolute ethanol and distilled water for 5-15 minutes, then dried with nitrogen, and treated with a plasma cleaner for 20-30 seconds before use.
[0016] 2) Applying and drying of phospholipids:
[0017] Dissolve phospholipids in chloroform (99.95%) to prepare a 1-20 mg / mL phospholipid solution, take 1-10 μL of the phospholipid solution on the finger-shaped microelectrode, and apply it back and forth with a syringe needle 1-6 times to make it evenly Lay it on the finger-shaped microelectrode, and then put it into a vacuum desiccator to dry it under vacuum for 2~3 hours to completely remove the residual chloroform solvent.
[0018] 3) Assembly of the preparation device:
[0019] Place the dried phospholipid-coated planar electrode between the glass slide and the cover glass to form a figure 1 In the reactio...
Embodiment 2
[0023] 1) Electrode preparation and cleaning:
[0024] ① Finger electrodes can be prepared as follows:
[0025] (1) ITO surface cleaning: Ultrasonic cleaning of ITO conductive glass with ethanol and distilled water for 15 minutes, N 2 Blow dry, process with plasma cleaning machine for 30s, put on heating plate to preheat at 110℃ for 10min.
[0026] (2) Set the plastic sealing machine (GMP Photonex-Sync235) to preheat at 110°C, press the AM175 photoresist on the ITO substrate to form a film, place the finger electrode mask, expose and develop it with soft ultraviolet (365nm) for 2s, 65°C Heating and curing for 4 minutes, with a mass percentage of 1.5% Na 2 CO 3 The solution was washed after ultrasonication for 7s, and a finger-shaped electrode pattern was preliminarily obtained.
[0027] (3) AUTOLAB PGSTAT302N electrochemical workstation was used to selectively corrode finger electrodes by chronoamperometry. The hydrochloric acid solution with a volume ratio of 1:5 was use...
Embodiment 3
[0038] 1) Electrode preparation and cleaning:
[0039] The prepared 100 μm finger microelectrodes were ultrasonically cleaned with absolute ethanol and distilled water for 15 minutes, then dried with nitrogen, and treated with a plasma cleaner for 20 seconds before use.
[0040] 2) Applying and drying of phospholipids:
[0041] Dissolve phospholipids in chloroform to prepare a 5 mg / mL phospholipid solution. Take 10 μL of the phospholipid solution on the finger-shaped microelectrode, and use a syringe needle to spread it back and forth three times to spread it evenly on the finger-shaped micro-electrode. It was placed in a vacuum desiccator and vacuum-dried for 3 hours to completely remove residual chloroform solvent.
[0042] 3) Assembly of the preparation device:
[0043] 30 μL of glucose (150 mM) solution was injected between the dried flat electrode coated with phospholipid and the cover glass to form a reaction device, and the solution height range was 100 μm.
[0044] ...
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