Fingertip pulse oximeter with accessories

Made:
2017-2022 in China
maker:
Unknown
Fingertip pulse oximeter with accessories Fingertip pulse oximeter with accessories Fingertip pulse oximeter with accessories Fingertip pulse oximeter with accessories Fingertip pulse oximeter with accessories Fingertip pulse oximeter with accessories

Creative Commons LicenseThis image is released under a CC BY-NC-SA 4.0 Licence

License this image for commercial use at Science and Society Picture Library

License

Creative Commons LicenseThis image is released under a CC BY-NC-SA 4.0 Licence

License this image for commercial use at Science and Society Picture Library

License

Creative Commons LicenseThis image is released under a CC BY-NC-SA 4.0 Licence

License this image for commercial use at Science and Society Picture Library

License

Creative Commons LicenseThis image is released under a CC BY-NC-SA 4.0 Licence

License this image for commercial use at Science and Society Picture Library

License

Creative Commons LicenseThis image is released under a CC BY-NC-SA 4.0 Licence

License this image for commercial use at Science and Society Picture Library

License

Creative Commons LicenseThis image is released under a CC BY-NC-SA 4.0 Licence

License this image for commercial use at Science and Society Picture Library

License

Science Museum Group
© The Board of Trustees of the Science Museum

Science Museum Group
© The Board of Trustees of the Science Museum

Science Museum Group
© The Board of Trustees of the Science Museum

Science Museum Group
© The Board of Trustees of the Science Museum

Science Museum Group
© The Board of Trustees of the Science Museum

Science Museum Group
© The Board of Trustees of the Science Museum

Blue and white fingertip pulse oximeter with blank lanyard, clear plastic holder, paper information manual, and cardboard box.

How can light measure the oxygen in our blood? Pulse oximeters like this shine red and infrared light through the fingertip and use this information to calculate the amount of oxygen in the blood. When blood contains lots of oxygen it absorbs more infrared light, but blood which contains less oxygen absorbs more red light. This type of technology was first used in the 1930s and 1940s to monitor pilots and make sure that they did not pass out at high altitudes in unpressurised aircraft. However, the technology used in modern devices was first developed in the 1970s by Japanese engineer Takuo Aoyagi.

Even as early as the 1980s, there was an awareness that pulse oximeters were less accurate on darker skin tones. This remains an issue and can have serious consequences for patients. On darker skin tones, pulse oximeters can give falsely high readings, increasing the risk of low oxygen levels not being recognised or responded to quickly.

Pulse oximeters became more widely known during the COVID-19 pandemic. There was mixed advice about whether people should use them to monitor their symptoms at home, with some doctors concerned that the information given by pulse oximeters could be misinterpreted, if they were used without medical advice.

Details

Category:
Clinical Diagnosis
Object Number:
2024-28
Materials:
cardboard, plastic (unidentified) and textile
Measurements:
overall: 33 mm x 30 mm x 59 mm,
overall (box): 55 mm x 76 mm x 36 mm,
type:
pulse monitor

Parts

Blue and white fingertip pulse oximeter with LED screen on the top.

Fingertip pulse oximeter

Blue and white fingertip pulse oximeter with LED screen on the top.

More

How can light measure the oxygen in our blood? Pulse oximeters like this shine red and infrared light through the fingertip and use this information to calculate the amount of oxygen in the blood. When blood contains lots of oxygen it absorbs more infrared light, but blood which contains less oxygen absorbs more red light. This type of technology was first used in the 1930s and 1940s to monitor pilots and make sure that they did not pass out at high altitudes in unpressurised aircraft. However, the technology used in modern devices was first developed in the 1970s by Japanese engineer Takuo Aoyagi.

Even as early as the 1980s, there was an awareness that pulse oximeters were less accurate on darker skin tones. This remains an issue and can have serious consequences for patients. On darker skin tones, pulse oximeters can give falsely high readings, increasing the risk of low oxygen levels not being recognised or responded to quickly.

Pulse oximeters became more widely known during the COVID-19 pandemic. There was mixed advice about whether people should use them to monitor their symptoms at home, with some doctors concerned that the information given by pulse oximeters could be misinterpreted, if they were used without medical advice.

Measurements:
overall: 33 mm x 30 mm x 59 mm,
Materials:
plastic (unidentified)
Object Number:
2024-28/1
type:
pulse monitor
Black textile lanyard for pulse oximeter.

Black lanyard for pulse oximeter

Black textile lanyard for pulse oximeter.

More

How can light measure the oxygen in our blood? Pulse oximeters like this shine red and infrared light through the fingertip and use this information to calculate the amount of oxygen in the blood. When blood contains lots of oxygen it absorbs more infrared light, but blood which contains less oxygen absorbs more red light. This type of technology was first used in the 1930s and 1940s to monitor pilots and make sure that they did not pass out at high altitudes in unpressurised aircraft. However, the technology used in modern devices was first developed in the 1970s by Japanese engineer Takuo Aoyagi.

Even as early as the 1980s, there was an awareness that pulse oximeters were less accurate on darker skin tones. This remains an issue and can have serious consequences for patients. On darker skin tones, pulse oximeters can give falsely high readings, increasing the risk of low oxygen levels not being recognised or responded to quickly.

Pulse oximeters became more widely known during the COVID-19 pandemic. There was mixed advice about whether people should use them to monitor their symptoms at home, with some doctors concerned that the information given by pulse oximeters could be misinterpreted, if they were used without medical advice.

Measurements:
overall: 5 mm x 170 mm x 5 mm,
Materials:
textile
Object Number:
2024-28/2
type:
lanyard
Clear plastic holder moulded to securely hold the pulse oximeter and lanyard, made to fit inside the original box packaging.

Clear plastic holder

Clear plastic holder moulded to securely hold the pulse oximeter and lanyard, made to fit inside the original box packaging.

More

How can light measure the oxygen in our blood? Pulse oximeters like this shine red and infrared light through the fingertip and use this information to calculate the amount of oxygen in the blood. When blood contains lots of oxygen it absorbs more infrared light, but blood which contains less oxygen absorbs more red light. This type of technology was first used in the 1930s and 1940s to monitor pilots and make sure that they did not pass out at high altitudes in unpressurised aircraft. However, the technology used in modern devices was first developed in the 1970s by Japanese engineer Takuo Aoyagi.

Even as early as the 1980s, there was an awareness that pulse oximeters were less accurate on darker skin tones. This remains an issue and can have serious consequences for patients. On darker skin tones, pulse oximeters can give falsely high readings, increasing the risk of low oxygen levels not being recognised or responded to quickly.

Pulse oximeters became more widely known during the COVID-19 pandemic. There was mixed advice about whether people should use them to monitor their symptoms at home, with some doctors concerned that the information given by pulse oximeters could be misinterpreted, if they were used without medical advice.

Measurements:
overall: 35 mm x 75 mm x 50 mm,
Materials:
plastic (unidentified)
Object Number:
2024-28/3
type:
holder - container
Paper instruction manual for pulse oximeter detailing product operation, warnings, and maintenance.

Instruction manual for pulse oximeter

Paper instruction manual for pulse oximeter detailing product operation, warnings, and maintenance.

More

How can light measure the oxygen in our blood? Pulse oximeters like this shine red and infrared light through the fingertip and use this information to calculate the amount of oxygen in the blood. When blood contains lots of oxygen it absorbs more infrared light, but blood which contains less oxygen absorbs more red light. This type of technology was first used in the 1930s and 1940s to monitor pilots and make sure that they did not pass out at high altitudes in unpressurised aircraft. However, the technology used in modern devices was first developed in the 1970s by Japanese engineer Takuo Aoyagi.

Even as early as the 1980s, there was an awareness that pulse oximeters were less accurate on darker skin tones. This remains an issue and can have serious consequences for patients. On darker skin tones, pulse oximeters can give falsely high readings, increasing the risk of low oxygen levels not being recognised or responded to quickly.

Pulse oximeters became more widely known during the COVID-19 pandemic. There was mixed advice about whether people should use them to monitor their symptoms at home, with some doctors concerned that the information given by pulse oximeters could be misinterpreted, if they were used without medical advice.

Measurements:
overall: 51 mm x 71 mm,
Materials:
paper (fibre product)
Object Number:
2024-28/4
type:
manual
Cardboard box used to package the pulse oximeter, lanyard, plastic holder, and instruction manual. The box has pictures and basic information about the pulse oximeter on it.

Cardboard box for pulse oximeter

Cardboard box used to package the pulse oximeter, lanyard, plastic holder, and instruction manual. The box has pictures and basic information about the pulse oximeter on it.

More

How can light measure the oxygen in our blood? Pulse oximeters like this shine red and infrared light through the fingertip and use this information to calculate the amount of oxygen in the blood. When blood contains lots of oxygen it absorbs more infrared light, but blood which contains less oxygen absorbs more red light. This type of technology was first used in the 1930s and 1940s to monitor pilots and make sure that they did not pass out at high altitudes in unpressurised aircraft. However, the technology used in modern devices was first developed in the 1970s by Japanese engineer Takuo Aoyagi.

Even as early as the 1980s, there was an awareness that pulse oximeters were less accurate on darker skin tones. This remains an issue and can have serious consequences for patients. On darker skin tones, pulse oximeters can give falsely high readings, increasing the risk of low oxygen levels not being recognised or responded to quickly.

Pulse oximeters became more widely known during the COVID-19 pandemic. There was mixed advice about whether people should use them to monitor their symptoms at home, with some doctors concerned that the information given by pulse oximeters could be misinterpreted, if they were used without medical advice.

Measurements:
overall: 55 mm x 76 mm x 36 mm,
Materials:
cardboard
Object Number:
2024-28/5
type:
box - container