IB Biology SL Inquiry Stage 1 — Explore & Design Internal assessment Practical skill ~10 min read

Exploring a Problem

This is the part of an investigation where you get to think like a scientist rather than follow a recipe. You start with something you are curious about, read enough to understand what is already known, and end up with one sharp question and a prediction you can actually justify. Most weak investigations were lost right here, before any equipment came out of the cupboard.

📘 What you need to know

From a vague interest to a testable question

Nobody starts with a perfect research question. Everyone starts with something loose, like “I want to know how light affects plants”. The work is in narrowing that down until it is something you can actually measure in a school lab.

Narrowing an idea down until you can test it each stage throws something away, and that is the point a broad idea background research research question hypothesis what you are curious about what is already known one IV, one DV, one organism if… then… because… You cannot write a good question before you have done the reading. The research stage is what tells you which range to use and what answer to expect.
Notice the hypothesis comes last. Students who write the prediction first usually end up bending the question to fit it.

Showing independent thinking

Plenty of investigations start from a standard class experiment, and that is fine. What lifts one above the rest is doing something slightly your own with it.

The easiest way to show that is to make the question comparative. Instead of “how does temperature affect catalase activity”, ask how the source of the catalase changes the answer — potato against celery, say. Now you are thinking about the link between an organism’s environment and how its molecules behave, which is a genuinely biological idea rather than a procedural one.

The most common mistake is the opposite one: trying to investigate too much. A question like “how do light intensity and carbon dioxide concentration affect photosynthesis?” contains two investigations. Pick one factor and do it properly.

Consult a variety of sources

Background reading is not decoration for the introduction. It does three specific jobs:

Sensible sources include your own notes, your textbook, the IB data booklet, and reliable scientific databases for research papers or genetic sequence data. What matters is that you can say where a claim came from.

If your research turns up a known value — an optimum pH, a typical rate — write it down. Comparing your result against it at the end is one of the easiest ways to show you understood the biology.

Writing the research question

A research question is focused, specific, and states the relationship being tested. “How do abiotic factors affect plants?” fails all three.

Three things every research question must contain What is the effect of lamp distance (from 10 cm to 50 cm) on the rate of oxygen bubble production in pondweed? independent variable named, with the range you will use dependent variable named, and how you will measure it the organism named in full, using its scientific name If any of the three is missing, the question is not specific enough yet. Someone reading only your question should know exactly what you are about to do.
Adding the scientific name matters more than it looks. Pondweed could be several species, and different species give different rates.
WORKED EXAMPLE

Broad idea: “I want to see how light affects photosynthesis.” Turn this into a focused research question.

Step 1: what will you actually change, and how? Light intensity, changed by moving a lamp to set distances from the plant. Step 2: what will you measure, and how? Rate of photosynthesis, measured as oxygen bubbles produced per minute. Step 3: name the organism and state the range Pondweed, Elodea canadensis, with the lamp at 10, 20, 30, 40 and 50 cm. What is the effect of lamp distance (10–50 cm) on the rate of oxygen bubble production in pondweed, Elodea canadensis? Everything vague has gone. Anyone could pick this up and set it up the same way tomorrow.

Writing the hypothesis

Here is the distinction that decides marks. “If temperature increases, enzyme activity will increase” is a prediction — it says what will happen. A hypothesis also says why, using established biology.

The shape of a scientific hypothesis two parts are easy, and the third is where the marks live IF THEN BECAUSE you change the IV this happens to the DV of this known biology move the lamp closer more bubbles per minute light is the limiting factor Without the third box you have written a prediction, not a hypothesis. The explanation must come from established biology. Enzyme structure, osmosis, limiting factors, ecological interactions — name the principle.
A good “because” also tells you what shape of graph to expect, which makes your results much easier to discuss later.
WORKED EXAMPLE

Write a full hypothesis for the pondweed investigation above.

If — the change you make If the lamp is moved closer to the pondweed, so light intensity increases… Then — what happens to what you measure …then the number of oxygen bubbles produced per minute will increase, and will eventually level off… Because — the biology behind it …because light provides the energy for the light-dependent reactions, so more light means more ATP and reduced NADP for carbon fixation. Above a certain intensity, light stops being the limiting factor and something else, such as carbon dioxide, limits the rate instead. Prediction + justification = a scientific hypothesis Notice the “then” predicts a shape, not just a direction. That is what makes it properly testable.
WORKED EXAMPLE

A student proposes: “How do temperature and pH affect how fast yeast respires?” Explain the problem and improve the question.

The problem There are two independent variables. If the rate changes you cannot tell which one caused it, so no clear conclusion is possible. The fix: choose one, and control the other Keep pH constant with a buffer, and investigate temperature alone. The improved question What is the effect of temperature (10, 20, 30, 40 and 50 °C) on the rate of carbon dioxide production by yeast, Saccharomyces cerevisiae? One IV, one DV, a stated range, a named organism The variable you dropped is not wasted — it becomes a controlled variable, and you explain how you held it steady.

Checking it is actually possible

A beautiful research question you cannot carry out is worth nothing. Before you commit, check three things.

🧩 The feasibility check

  1. Equipment — does your school have it, and can you book it? A colorimeter you cannot get hold of is not a plan.
  2. Organisms — can you get enough, of similar age and size, when you need them?
  3. Time — plants and germination take days or weeks, not one lesson. Count the total number of runs and multiply by how long each takes.
Expect to change your mind. Your reading may show the first idea will not work, or a pilot run may show the reaction finishes in three seconds. Changing the question in response to what you learn is not failure — it is what scientists do.

When you are stuck for an idea

💡 Exam tip

⚠ Common mix-up

Up next: Designing an Investigation — turning that question into a method someone else could follow exactly, with the range, the repeats and the apparatus all justified.

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