🇮🇳 GATE Biomedical Engineering · flashcards

GATE Biomedical Engineering Biomaterials Flashcards

51 question-and-answer cards covering Biomaterials as it is examined in GATE Biomedical Engineering. 24 of them are printed below, taken from across the deck — no signup, no paywall on the preview.

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24 sample cards from the Biomaterials deck

Sampled from the end of the deck, so these are different cards from the ones shown on the syllabus page.

  1. Differentiate bulk erosion from surface erosion in degradable polymers.

    In bulk erosion water penetrates faster than it degrades, so the whole matrix degrades throughout (e.g., PLGA). In surface erosion degradation outpaces water diffusion, so the device erodes layer-by-layer from outside (e.g., polyanhydrides), keeping a constant geometry.

  2. What is rheology?

    The study of the deformation and flow of matter, especially the relationship between applied stress and resulting strain or strain rate in fluids and soft solids.

  3. Define a Newtonian fluid and give its constitutive equation.

    A fluid whose viscosity is independent of shear rate. Shear stress $\tau = \mu \dot{\gamma}$, where $\mu$ is the dynamic viscosity and $\dot{\gamma}$ the shear rate (e.g., water).

  4. What is shear-thinning (pseudoplastic) behavior? Give a biological example.

    Viscosity decreases with increasing shear rate. Blood and synovial fluid are shear-thinning, allowing easier flow at high shear.

  5. State the power-law (Ostwald–de Waele) model for non-Newtonian fluids.

    $\tau = K \dot{\gamma}^{\,n}$, where $K$ is the consistency index and $n$ the flow behavior index: $n<1$ shear-thinning, $n=1$ Newtonian, $n>1$ shear-thickening.

  6. What does the Bingham plastic model describe and what is its equation?

    A material that behaves rigidly until a yield stress is exceeded, then flows: $\tau = \tau_0 + \mu_p \dot{\gamma}$ for $\tau > \tau_0$, where $\tau_0$ is the yield stress and $\mu_p$ the plastic viscosity.

  7. Define viscoelasticity and name the two ideal-element models.

    Viscoelastic materials exhibit both viscous (dashpot) and elastic (spring) responses. The Maxwell model (spring + dashpot in series) and the Kelvin–Voigt model (spring + dashpot in parallel).

  8. In dynamic mechanical analysis, what do the storage modulus $G'$ and loss modulus $G''$ represent?

    $G'$ is the elastic (stored, recoverable) energy component; $G''$ is the viscous (dissipated) energy component. Their ratio gives $\tan\delta = G''/G'$, the damping/loss factor.

  9. What is the working principle of Atomic Force Microscopy (AFM)?

    A sharp tip on a flexible cantilever scans a surface; interatomic forces deflect the cantilever, which is measured by a laser reflected onto a photodiode, building a 3-D topographic map at near-atomic resolution.

  10. Name the three main imaging modes of AFM.

    Contact mode (tip drags in continuous contact), non-contact mode (tip oscillates just above the surface), and tapping/intermittent-contact mode (tip oscillates and lightly touches each cycle).

  11. What is a key advantage of AFM over electron microscopy for biological samples?

    AFM works in air or liquid (physiological conditions) without vacuum, coating, or staining, giving true 3-D nanoscale topography and the ability to image live, hydrated samples and measure forces.

  12. Which force law governs AFM tip–sample interaction, and what regions does it have?

    The Lennard-Jones potential, $U(r) = 4\varepsilon\left[\left(\dfrac{\sigma}{r}\right)^{12} - \left(\dfrac{\sigma}{r}\right)^{6}\right]$, with long-range attraction (van der Waals) and short-range repulsion.

  13. What is the fundamental difference between electron microscopy and light microscopy?

    Electron microscopy uses a beam of electrons (much shorter wavelength) instead of light, achieving far higher resolution; the de Broglie wavelength $\lambda = \dfrac{h}{p} = \dfrac{h}{\sqrt{2 m e V}}$ shrinks with accelerating voltage.

  14. How does the de Broglie relation set the resolution limit of electron microscopes?

    Resolution scales with wavelength $\lambda = h/p$. Accelerating electrons to high voltage gives picometer-scale $\lambda$, far below visible light ($\sim 500\ \text{nm}$), enabling atomic resolution.

  15. What does SEM (Scanning Electron Microscopy) measure and what kind of image does it give?

    SEM scans a focused electron beam over a sample surface and detects secondary and backscattered electrons, producing a high-depth-of-field, 3-D-like image of surface topography and morphology.

  16. Why must most samples be coated (e.g., with gold) before SEM imaging?

    Non-conductive samples accumulate charge under the electron beam, distorting the image; a thin conductive coating (Au, Pt, C) dissipates charge and enhances secondary-electron emission.

  17. What is the working principle of Transmission Electron Microscopy (TEM)?

    A high-energy electron beam is transmitted through an ultra-thin specimen ($<100\ \text{nm}$); transmitted/diffracted electrons form a magnified projection image revealing internal structure at atomic resolution.

  18. State two key differences between SEM and TEM.

    SEM detects reflected/secondary electrons from the surface for 3-D topography at lower resolution; TEM transmits electrons through a thin section giving 2-D internal structure at much higher (atomic) resolution and higher accelerating voltage.

  19. Why does TEM require ultra-thin specimens?

    Electrons must pass through the sample; if it is too thick they are absorbed or scattered multiply, blurring the image. Sections are typically $<100\ \text{nm}$ thick.

  20. What signals besides the image can an electron microscope generate for elemental analysis?

    Characteristic X-rays detected by EDS/EDX (energy-dispersive X-ray spectroscopy) for elemental composition, plus backscattered electrons giving atomic-number (Z) contrast.

  21. What does Fourier Transform Infrared (FTIR) spectroscopy measure?

    It measures absorption of infrared light by molecular bonds at specific vibrational frequencies, identifying functional groups and chemical bonds from the resulting spectrum.

  22. What molecular condition must be met for a vibration to be IR active?

    The vibration must cause a net change in the molecular dipole moment, $\dfrac{\partial \mu}{\partial Q} \neq 0$. Symmetric vibrations with no dipole change are IR inactive.

  23. Why is FTIR called 'Fourier transform' spectroscopy?

    It uses a Michelson interferometer to collect all IR frequencies simultaneously as an interferogram; a mathematical Fourier transform converts that time/path-difference signal into the frequency-domain (wavenumber) spectrum, giving the Fellgett (multiplex) and Jacquinot advantages.

  24. In what units is the FTIR x-axis given, and how does it relate to wavelength?

    In wavenumber $\bar{\nu}$ ($\text{cm}^{-1}$), where $\bar{\nu} = \dfrac{1}{\lambda} = \dfrac{\nu}{c}$. Wavenumber is directly proportional to vibrational energy.

What this deck covers

The Biomaterials deck follows the GATE Biomedical Engineering Biomaterials syllabus — 5 chapters and 12 topics — so questions land on material that is genuinely examinable rather than trivia around it. That works out to roughly 10.2 cards per chapter.

Answers are written to be recallable, not just readable — averaging about 195 characters, which is long enough to carry the reasoning and short enough to say out loud.

A deck like this earns its keep on the second and third pass. Read the syllabus first so you know the shape of the subject, then use the cards to find the specific facts that have not stuck.

Biomaterials flashcards FAQ

How many Biomaterials flashcards are in this GATE Biomedical Engineering deck?

51 cards. This page previews 24 of them, sampled evenly across the deck so you can judge the difficulty before installing anything.

Are these GATE Biomedical Engineering flashcards free?

Yes. The preview here is free to read with no signup, and the full 51-card deck is free inside the Examius app.

What do the Biomaterials cards cover?

They follow the GATE Biomedical Engineering Biomaterials syllabus — 5 chapters and 12 topics — so the questions track what is actually examinable.

How should I use these flashcards?

Read the syllabus first so you know the shape of the subject, then drill the deck. Examius schedules each card with spaced repetition, so cards you keep missing come back sooner and ones you know drift further apart.