6.2: Formative/Summative Questions
- Page ID
- 118001
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\(\newcommand{\avec}{\mathbf a}\) \(\newcommand{\bvec}{\mathbf b}\) \(\newcommand{\cvec}{\mathbf c}\) \(\newcommand{\dvec}{\mathbf d}\) \(\newcommand{\dtil}{\widetilde{\mathbf d}}\) \(\newcommand{\evec}{\mathbf e}\) \(\newcommand{\fvec}{\mathbf f}\) \(\newcommand{\nvec}{\mathbf n}\) \(\newcommand{\pvec}{\mathbf p}\) \(\newcommand{\qvec}{\mathbf q}\) \(\newcommand{\svec}{\mathbf s}\) \(\newcommand{\tvec}{\mathbf t}\) \(\newcommand{\uvec}{\mathbf u}\) \(\newcommand{\vvec}{\mathbf v}\) \(\newcommand{\wvec}{\mathbf w}\) \(\newcommand{\xvec}{\mathbf x}\) \(\newcommand{\yvec}{\mathbf y}\) \(\newcommand{\zvec}{\mathbf z}\) \(\newcommand{\rvec}{\mathbf r}\) \(\newcommand{\mvec}{\mathbf m}\) \(\newcommand{\zerovec}{\mathbf 0}\) \(\newcommand{\onevec}{\mathbf 1}\) \(\newcommand{\real}{\mathbb R}\) \(\newcommand{\twovec}[2]{\left[\begin{array}{r}#1 \\ #2 \end{array}\right]}\) \(\newcommand{\ctwovec}[2]{\left[\begin{array}{c}#1 \\ #2 \end{array}\right]}\) \(\newcommand{\threevec}[3]{\left[\begin{array}{r}#1 \\ #2 \\ #3 \end{array}\right]}\) \(\newcommand{\cthreevec}[3]{\left[\begin{array}{c}#1 \\ #2 \\ #3 \end{array}\right]}\) \(\newcommand{\fourvec}[4]{\left[\begin{array}{r}#1 \\ #2 \\ #3 \\ #4 \end{array}\right]}\) \(\newcommand{\cfourvec}[4]{\left[\begin{array}{c}#1 \\ #2 \\ #3 \\ #4 \end{array}\right]}\) \(\newcommand{\fivevec}[5]{\left[\begin{array}{r}#1 \\ #2 \\ #3 \\ #4 \\ #5 \\ \end{array}\right]}\) \(\newcommand{\cfivevec}[5]{\left[\begin{array}{c}#1 \\ #2 \\ #3 \\ #4 \\ #5 \\ \end{array}\right]}\) \(\newcommand{\mattwo}[4]{\left[\begin{array}{rr}#1 \amp #2 \\ #3 \amp #4 \\ \end{array}\right]}\) \(\newcommand{\laspan}[1]{\text{Span}\{#1\}}\) \(\newcommand{\bcal}{\cal B}\) \(\newcommand{\ccal}{\cal C}\) \(\newcommand{\scal}{\cal S}\) \(\newcommand{\wcal}{\cal W}\) \(\newcommand{\ecal}{\cal E}\) \(\newcommand{\coords}[2]{\left\{#1\right\}_{#2}}\) \(\newcommand{\gray}[1]{\color{gray}{#1}}\) \(\newcommand{\lgray}[1]{\color{lightgray}{#1}}\) \(\newcommand{\rank}{\operatorname{rank}}\) \(\newcommand{\row}{\text{Row}}\) \(\newcommand{\col}{\text{Col}}\) \(\renewcommand{\row}{\text{Row}}\) \(\newcommand{\nul}{\text{Nul}}\) \(\newcommand{\var}{\text{Var}}\) \(\newcommand{\corr}{\text{corr}}\) \(\newcommand{\len}[1]{\left|#1\right|}\) \(\newcommand{\bbar}{\overline{\bvec}}\) \(\newcommand{\bhat}{\widehat{\bvec}}\) \(\newcommand{\bperp}{\bvec^\perp}\) \(\newcommand{\xhat}{\widehat{\xvec}}\) \(\newcommand{\vhat}{\widehat{\vvec}}\) \(\newcommand{\uhat}{\widehat{\uvec}}\) \(\newcommand{\what}{\widehat{\wvec}}\) \(\newcommand{\Sighat}{\widehat{\Sigma}}\) \(\newcommand{\lt}{<}\) \(\newcommand{\gt}{>}\) \(\newcommand{\amp}{&}\) \(\definecolor{fillinmathshade}{gray}{0.9}\)Section 1: Questions
Formative Questions
- How do you determine total magnification?
- Describe how to use the ocular micrometer under 40x, 100x, 400x, and 1000x total magnifications.
- Why is immersion oil necessary when viewing specimens under 1000x total magnfication?
Summative Questions
- Compare and contrast light microscopy and phase-contrast microscopy.
- How do the marks on the ocular micrometer change as magnification increases? Why?
- When would a scientist choose to use an electron microscope instead of a light microscope?
Section 2: Rubric / Answers
Formative Questions
- How do you determine total magnification?
- ocular lens magnification x objective lens magnification = total magnification
- Describe how to use the ocular micrometer under 40x, 100x, 400x, and 1000x total magnifications.
- The distance between each line varies as the total magnfication changes. At 40x total magnification, the distance from one line of the ocular micrometer to the next is 25 micrometers. For 100x, 400x, and 1000x total magnifications, the distances are 10, 2.5, and 1 micrometer(s), respectively.
- Why is immersion oil necessary when viewing specimens under 1000x total magnfication?
- The refraction of light is such that some of the light rays are bent too much and do not pass through the objective lens. This creates a blurry image. Adding immersion oil decreases the refraction such that all light rays will be able to enter the objective lens, creating a clear image of the specimen.
Summative Questions
- Compare and contrast light microscopy and phase-contrast microscopy.
- Light microscopy uses visible light to detect and magnify very small objects and enlarge them. Lenses are used to focus light on the specimen, magnifying it to produce an image. In phase-contrast microscopy, special lenses create phase shifts in light passing through a transparent specimen that translate to brightness changes in the image. These shifts reveal differences in density in various regions of the specimen, visible as brightness variations.
- How do the marks on the ocular micrometer change as magnification increases? Why?
- The marks represent smaller absolute distances as the resolution increases. See Formative Question 2.
- When would a scientist choose to use an electron microscope instead of a light microscope?
- Electron microscopes are often necessary to view specimens or samples that are smaller than 1 micrometer in diameter, such as organelles or viruses.


