Conversion from Microliters to Nanoliters

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Formula to convert Microliters (µL) to Nanoliters (nL)

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Microliters to Nanoliters conversion table

Microliters (µL)Nanoliters (nL)
1 Microliter1000 nL
2 Microliters2000 nL
3 Microliters3000 nL
4 Microliters4000 nL
5 Microliters5000 nL
10 Microliters10000 nL
20 Microliters20000 nL
25 Microliters25000 nL
50 Microliters50000 nL
100 Microliters100000 nL

Volume reference points

ReferenceMicroliters (µL)Nanoliters (nL)
A teaspoon5000 µL5000000 nL
A can of soft drink330000 µL330000000 nL
A wine bottle750000 µL750000000 nL
A bathtub150000000 µL1.5 × 1011 nL
An Olympic swimming pool2.5 × 1012 µL2.5 × 1015 nL

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Information about the Microliter (µL)

The microlitre is a unit of volume equal to one millionth of a litre, written µL. It is exactly one cubic millimetre. It is the working unit of the molecular biology laboratory and of clinical haematology, and almost every quantity in modern biological science that is not a mass or a concentration is a number of microlitres.

Pipetting is what defines it in practice. Adjustable micropipettes are named after their maximum volume in microlitres, so a bench holds instruments of 2, 20, 200 and 1000, and a researcher's day consists largely of moving microlitres from one tube to another. A polymerase chain reaction is typically assembled in twenty to fifty microlitres, and a whole experiment may use less liquid than a teaspoon holds.

Blood counts are reported against it. White cells number between four thousand and eleven thousand per microlitre in a healthy adult, platelets between a hundred and fifty thousand and four hundred thousand, and red cells about five million. Those reference ranges are among the most widely used numbers in medicine, and all of them are counts within a cube one millimetre on a side.

Diagnostics has driven the volumes down. A modern blood glucose meter needs about half a microlitre of blood, which is why a finger-prick sample is enough where an earlier generation of instruments needed a syringe. Point-of-care analysers, lateral flow tests and microfluidic cartridges are all designed around the smallest sample a patient can be asked to give.

Analytical chemistry uses the same scale. Injection volumes in liquid chromatography run from one to twenty microlitres, gas chromatography uses one or less, and mass spectrometry samples are prepared in tens. Because the analytical signal depends on the amount injected, the accuracy of a microlitre-scale measurement sets the accuracy of the whole result.

The identity with the cubic millimetre is a genuine convenience. Haematology once reported cell counts per cubic millimetre and now reports them per microlitre, and the numbers did not change at all, because the two units are the same. That is a rare case of a unit change in medicine that required no re-education and produced no errors.

One microlitre equals 1 cubic millimetre, 0.001 millilitres, 0.000001 litres, or about 0.0000338 US fluid ounces.


Information about the Nanoliter (nL)

The nanolitre is a unit of volume equal to one billionth of a litre, written nL. It is a thousandth of a microlitre, and a nanolitre of water has a mass of one microgram. It is the scale at which liquid handling stops being a matter of pipettes and becomes a matter of engineered channels, printed droplets and acoustic pulses.

Microfluidics is built here. A lab-on-a-chip moves samples through channels a few tens of micrometres wide, so the volume inside any one segment is measured in nanolitres, and a whole analysis may consume less than a microlitre. Working at this scale changes the physics as well as the quantity: surface tension dominates gravity, flows stay orderly rather than turbulent, and mixing has to be engineered rather than assumed.

Digital polymerase chain reaction shows what the scale buys. A sample is divided into around twenty thousand droplets of roughly one nanolitre each, every droplet is amplified separately, and the number that come out positive gives an absolute count of target molecules rather than a relative measurement. Dividing a microlitre into thousands of countable compartments is only possible because a nanolitre is small enough to hold either one target molecule or none.

Drug screening moves liquid without touching it. Acoustic dispensers use a focused sound pulse to eject droplets of two and a half nanolitres from an open well, with no tip and therefore no cross-contamination and no plastic waste. A screening plate of fifteen hundred wells can be filled with distinct compounds in a few minutes at this volume.

Printing and spotting work at the same magnitude. A microarray spot holds between half a nanolitre and five, an inkjet droplet is a few picolitres so a nanolitre is several hundred drops, and single-cell platforms encapsulate individual cells in droplets of this size because a mammalian cell occupies only a few picolitres.

Handling nanolitres reliably is mostly a fight against evaporation. A one-nanolitre droplet exposed to air can lose a measurable fraction of itself in seconds, so devices at this scale work under oil, in sealed channels or in humidity-controlled enclosures, and that constraint shapes the instruments more than the dispensing itself does.

One nanolitre equals 0.001 microlitres, 0.000001 millilitres, 0.001 cubic millimetres, or 1,000,000 cubic micrometres.