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Work done a Centre for Soft and Condensed

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Work done a Centre for Soft and Condensed Matter.
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Page 1: Work done a Centre for Soft and Condensed

Work done a Centre for Soft and

Condensed Matter.

Page 2: Work done a Centre for Soft and Condensed

Fabrication of glass nano-pipettes and micro-pipettes

Page 3: Work done a Centre for Soft and Condensed

Pore diameter: 104.7 nm Shrunk diameter: 74.36 nm

Pore diameter: 88.62 nm Shrunk diameter: 54.78 nm

Shrinking of glass nanopores

Page 4: Work done a Centre for Soft and Condensed

Device characterization

I-V curves for 5 salt buffer concentrations. Using the I-V curves calculate the

conductance.

Experimental Set up

and reading

Pore diameter = 176.1 nm

Molarity Resistance (MΩ) Irms (Noise) pA Beta value (β) Alpha Value (α)

1M 2.13 8.47 0.1 0.5

0.1M 7.75 3.94 0.1 0.5

50mM 11.34 4.33 0.1 0.5

1mM 87.53 3.91 0.1 0.5

100µM 95.99 3.41 0.1 0.5

1µM 98.15 3.87 0.1 0.5

Page 5: Work done a Centre for Soft and Condensed

Results

Page 6: Work done a Centre for Soft and Condensed
Page 7: Work done a Centre for Soft and Condensed

Flow cell designed for imaging pipettes

under 20X and 40X objective

Page 8: Work done a Centre for Soft and Condensed

Micro fluidic cell designed for pressure and

diffusion experiments through pipettes.

Page 9: Work done a Centre for Soft and Condensed

Flow cell designed for visualizing electrical and pressure

driven translocation events through pipettes.

Page 10: Work done a Centre for Soft and Condensed

Oscillation of 1 micron polystyrene beads in

alternating electric field.

Position A Position B

Polystyrene

bead

Function

generator

Page 11: Work done a Centre for Soft and Condensed

Calculating the velocity of 1 micron polystyrene

beads oscillating in alternating electric field.

Page 12: Work done a Centre for Soft and Condensed

1a 1b 1c 1d

5a 5b 5c 5d 5e

Translocation of Polystyrene beads through

sub micron glass pipettes

Fig (1a-1d) translocation of 15 micron beads through 50 micron pipette

Fig (5a-5e) translocation of fluorescent 15 micron beads through 30 micron pipette

Page 13: Work done a Centre for Soft and Condensed

2a 2b 2c 2d

3a 3b 3c 3d 3e

4a 4b 4c 4d

Fig (2a-2d); (3a-3e); (4a-4d) – Translocation of 3 micron beads through 5 micron pipette

Page 14: Work done a Centre for Soft and Condensed

Pressure driven Translocation of 450 nm polystyrene beads through a 900 nm pipette,

image taken under 40X objective.

Page 15: Work done a Centre for Soft and Condensed

Pressure driven diffusion through pipettes to track the

trajectory of polystyrene beads at the mouth of the

micropipette

Page 16: Work done a Centre for Soft and Condensed

Pore diameter: 1.6 µm

Translocation and visualization of polystyrene beads

(500 nm and 1 µm) under alternating electrical stimulus.

Flow cell used for visualizing and performing translocation events.

Page 17: Work done a Centre for Soft and Condensed

1 2 3

4 5 6

7 8

Visualizing a single electrical translocation event, of a 1 micron polystyrene bead oscillating

under alternating field at 3V.

Page 18: Work done a Centre for Soft and Condensed

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2

4 3

6 7


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