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    Microscopy — AQA GCSE Biology

    Test yourself on Microscopy with AQA GCSE practice questions.

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    Microscopy explained

    Because electrons have a much shorter wavelength than visible light, an electron microscope resolves points that are only about 0.2 nm apart, whereas a light microscope cannot separate points closer than about 200 nm.

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    This thousand-fold improvement in resolving power means structures that blur together under a light microscope become sharp and separate in an electron micrograph. For instance, a light microscope shows a mitochondrion as a faint oval, but an electron micrograph reveals its double membrane and folded cristae. Similarly, the internal membranes of a chloroplast or the detail of a synapse become visible. Finer detail is therefore a direct consequence of better resolution, not merely of greater magnification, and it allows biologists to relate structure to function more precisely.

    Your focus

    1. Explain why electron microscopes reveal finer detail than light microscopes.
    2. Identify sub-cellular structures visible only with an electron microscope.
    3. Relate improved resolution to a named example of cellular detail.

    Microscopy exam tips

    Marking Points
    • Electrons have a much shorter wavelength than visible light, so the resolution limit is far smaller.
    • Resolution of about 0.2 nm allows points that a light microscope merges to be seen as separate.
    • Finer detail includes internal membranes and organelles such as cristae in mitochondria and thylakoids in chloroplasts.
    • The improvement follows from resolving power, not from magnification alone, because enlarging a blurred image adds no new information.
    • Finer structural detail helps biologists link sub-cellular structure to its function.
    • Specimens for electron microscopy are usually dead and dehydrated, which is a limitation when studying living cells.
    Examiner Tips
    • 💡Link the finer detail explicitly to the shorter wavelength of electrons rather than stating it as an isolated fact.
    • 💡Give a named example of detail revealed, such as cristae or thylakoid membranes, to show understanding.
    • 💡When interpreting an electron micrograph, use scale bars and known organelle shapes to identify structures rather than guessing from size alone.
    Common Mistakes
    • Claiming that an electron microscope simply magnifies more: magnification without improved resolution would only produce a larger blur, so the key gain is resolving power.
    • Assuming all cell structures are visible with a light microscope: organelles such as ribosomes and the internal details of mitochondria are below its resolution limit.
    • Forgetting that electron microscopy usually requires dead, dehydrated specimens, so dynamic processes in living cells cannot be observed directly.