Nanopore technology has been extensively investigated for analysis of biomolecules, and a success story in this field concerns DNA sequencing using a nanopore chip featuring an array of hundreds of biological nanopores (BioNs). Solid-state nanopores (SSNs) have been explored to attain longer lifetime and higher integration density than what BioNs can offer, but SSNs are generally considered to generate higher noise whose origin remains to be confirmed. Here, we systematically study low-frequency (including thermal and flicker) noise characteristics of SSNs measuring 7 to 200 nm in diameter drilled through a 20-nm-thick SiNx membrane by focused ion milling. Both bulk and surface ionic currents in the nanopore are found to contribute to the f...
Solid-state nanopores have emerged as a versatile tool for the characterization of single biomolecul...
Over the last five years, solid state nanopore technology advanced to rival biological pores as a pl...
Over the last five years, solid state nanopore technology advanced to rival biological pores as a pl...
We identify a contribution to the ionic current noise spectrum in solid-state nanopores that exceeds...
Nanopores bear great potential as single-molecule tools for bioanalytical sensing and sequencing, du...
The performance of solid-state nanopores as promising biosensors is severely hampered by low-frequen...
Nanopores bear great potential as single-molecule tools for bioanalytical sensing and sequencing, du...
Low-frequency ionic current noise in solid-state nanopores imposes a limitation on the time resoluti...
From electrical current to ecological and biological systems, fluctuations are characterised based o...
From electrical current to ecological and biological systems, fluctuations are characterised based o...
Nanopore based sensing technology has been widely studied for a broad range of applications includin...
This thesis describes experimental work on a novel type of devices capable of detecting single-(bio)...
Ionic current measurements through solid-state nanopores consistently show a power spectral density ...
Nanopores are a powerful tool for probing the structure of single molecules, such as a strand of DNA...
Nanopore sensing relies on the application of a voltage across a nano-scale aperture fabricated in a...
Solid-state nanopores have emerged as a versatile tool for the characterization of single biomolecul...
Over the last five years, solid state nanopore technology advanced to rival biological pores as a pl...
Over the last five years, solid state nanopore technology advanced to rival biological pores as a pl...
We identify a contribution to the ionic current noise spectrum in solid-state nanopores that exceeds...
Nanopores bear great potential as single-molecule tools for bioanalytical sensing and sequencing, du...
The performance of solid-state nanopores as promising biosensors is severely hampered by low-frequen...
Nanopores bear great potential as single-molecule tools for bioanalytical sensing and sequencing, du...
Low-frequency ionic current noise in solid-state nanopores imposes a limitation on the time resoluti...
From electrical current to ecological and biological systems, fluctuations are characterised based o...
From electrical current to ecological and biological systems, fluctuations are characterised based o...
Nanopore based sensing technology has been widely studied for a broad range of applications includin...
This thesis describes experimental work on a novel type of devices capable of detecting single-(bio)...
Ionic current measurements through solid-state nanopores consistently show a power spectral density ...
Nanopores are a powerful tool for probing the structure of single molecules, such as a strand of DNA...
Nanopore sensing relies on the application of a voltage across a nano-scale aperture fabricated in a...
Solid-state nanopores have emerged as a versatile tool for the characterization of single biomolecul...
Over the last five years, solid state nanopore technology advanced to rival biological pores as a pl...
Over the last five years, solid state nanopore technology advanced to rival biological pores as a pl...