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Headstrong: 52 Women Who Changed Science-and the World Paperback – April 7, 2015
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Fifty-two inspiring and insightful profiles of history’s brightest female scientists.
“Rachel Swaby’s no-nonsense and needed Headstrong dynamically profiles historically overlooked female visionaries in science, technology, engineering, and math.”—Elle
In 2013, the New York Times published an obituary for Yvonne Brill. It began: “She made a mean beef stroganoff, followed her husband from job to job, and took eight years off from work to raise three children.” It wasn’t until the second paragraph that readers discovered why the Times had devoted several hundred words to her life: Brill was a brilliant rocket scientist who invented a propulsion system to keep communications satellites in orbit, and had recently been awarded the National Medal of Technology and Innovation. Among the questions the obituary—and consequent outcry—prompted were, Who are the role models for today’s female scientists, and where can we find the stories that cast them in their true light?
Headstrong delivers a powerful, global, and engaging response. Covering Nobel Prize winners and major innovators, as well as lesser-known but hugely significant scientists who influence our every day, Rachel Swaby’s vibrant profiles span centuries of courageous thinkers and illustrate how each one’s ideas developed, from their first moment of scientific engagement through the research and discovery for which they’re best known. This fascinating tour reveals 52 women at their best—while encouraging and inspiring a new generation of girls to put on their lab coats.
- Print length288 pages
- LanguageEnglish
- PublisherBroadway Books
- Publication dateApril 7, 2015
- Dimensions5.2 x 0.72 x 8 inches
- ISBN-109780553446791
- ISBN-13978-0553446791
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Editorial Reviews
Review
—New York Times Book Review
“A corrective—a spur to change… Swaby’s subjects are all worthy women who deserve more publicity.”
—Wall Street Journal
“[A] collection of brisk, bright biographies.”
—The Washington Post
“Rachel Swaby’s no-nonsense and needed Headstrong dynamically profiles historically overlooked female visionaries in science, technology, engineering, and math.”
—Elle
"A woman revolutionized heart surgery. A woman created the standard test given to all newborns to determine their health. A woman was responsible for some of the earliest treatments of previously terminal cancers. We shouldn't need to be reminded of their names, but we do. With a deft touch, Rachel Swaby has assembled an inspiring collection of some of the central figures in twentieth century science. Headstrong is an eye-opening, much-needed exploration of the names history would do well to remember, and Swaby is a masterful guide through their stories."
—Maria Konnikova, Contributing New Yorker writer and New York Times bestselling author of Mastermind: How to Think Like Sherlock Holmes
“Rachel Swaby's fine, smart look at women in science is a much-needed corrective to the record—a deftly balanced field guide to the overlooked (Hilde Mangold), the marginalized (Rosalind Franklin), the unexpected (Hedy Lamarr), the pioneering (Ada Lovelace), and the still-controversial (Rachel Carson). Swaby reminds us that science, like the rest of life, is a team sport played by both genders.”
—William Souder, author of On a Farther Shore and Under a Wild Sky
"Headstrong is a true gem. So many amazing women have had an incredible impact on STEM fields, and this book gives clear, concise, easy-to-digest histories of 52 of them—there’s no longer an excuse for not being familiar with our math and science heroines. Thank you, Rachel!"
—Danica McKellar, actress and New York Times bestselling author of Math Doesn’t Suck
“Swaby’s exuberant portrayals make this a compulsively readable title. There is no good reason why every single woman here is not a household name, and now, thankfully, Swaby is helping rectify history’s oversight.”
—Booklist
“Swaby celebrates barrier-breaking titans… [and] has collected an inspiration master list of women in science with accessible explanations of their work.”
—Publishers Weekly
“Although many of these women may not be familiar names outside their courses of study, the author's spadework should bring them to the forefront, allowing the general public to learn about the females who pushed beyond sexist attitudes to undertake and achieve success in a male-dominated arena. These short accounts should inspire girls who want to study science to follow their dreams….succinct and informative.”
—Kirkus Reviews
"[W]omen just don’t get the encouragement they need and deserve to pursue careers in science. Here’s a handy book to help encourage young women to put themselves on the scitech path, with profiles of 52 women from Nobel Prize winners to major innovators and more who have made a difference in science."
—Library Journal
About the Author
www.rachelswaby.com
Excerpt. © Reprinted by permission. All rights reserved.
1842–1906
Medicine • American
A warning from Edward Clarke, MD, professor at Harvard: “There have been instances, and I have seen such, of females . . . graduated from school or college excellent scholars, but with undeveloped ovaries. Later they married, and were sterile.” He goes on to explain how reproductive organs fail to thrive. “The system never does two things well at the same time. The muscles [note: muscles = menstruation] and the brain cannot functionate in their best way at the same moment.” These passages are from Clarke’s book, Sex in Education; or, A Fair Chance For Girls, published in 1873. The gist: Exerting oneself while on the rag is dangerous. Therefore educating women is dangerous. For a woman’s own safety, she should not pursue higher education. The womb is at stake.
Today, it’s easy to write off Clarke’s thesis as one doctor’s nutty ramblings. His descriptions of students--“crowds of pale, bloodless female faces, that suggest consumption, scrofula, anemia, and neuralgia,” as a result of “our present system of educating girls”--sounds more like The Walking Dead than students at a university campus. But when A Fair Chance for Girls was published, administrators and faculty opposed to women in education hoisted up the book as a confirmation of their views, couched in an argument about safety.
Mary Putnam Jacobi thought the whole thing was hogwash. Jacobi, an American, was the first woman admitted to France’s Ecole de Medecine. It took a bit of wrangling, but once she was in, Jacobi found her medical training thrilling. Certainly there were people who doubted her ability to succeed--even her mother did some hand-wringing over her schooling--but Jacobi proceeded with ease and humor. In 1867, she wrote home to assure her mother, “I really am only enjoying myself . . . the hospitals present so much that is stimulating, (and do not be shocked if I add amusing) that I am never conscious of the slightest head strain.”
To battle Clarke’s assertions, Jacobi could have presented her personal experience as a counterargument. Her education at the Ecole de Medecine took place after she’d already received an MD in the United States. Medical school made Jacobi neither ill nor infertile. But bringing forward an autobiographical account when evidence was within reach was like feeling for your own heartbeat when it could be measured with a stethoscope.
Jacobi challenged Clarke’s thinly veiled justification for discrimination with 232 pages of hard numbers, charts, and analysis. She gathered survey results covering a woman’s monthly pain, cycle length, daily exercise, and education along with physiological indicators like pulse, rectal temperature, and ounces of urine. To really bring her argument home, Jacobi had test subjects undergo muscle strength tests before, during, and after menstruation. The paper was almost painfully evenhanded. Her scientific method-supported mic drop: “There is nothing in the nature of menstruation to imply the necessity, or even the desirability, of rest.” If women suffered from consumption, scrofula, anemia, and neuralgia, it wasn’t, as Clarke claimed, because they studied too hard.
Her study--sweeter for its evidence than its tone--won the Boylston Prize at Harvard University just three years after Clarke, a professor at the same school, published A Fair Chance. The Clarke versus Jacobi scholarly disagreement may sound like academic quibbling, a biased doctor against a rigorous one, but in the argument over who was allowed university admission, to have science on your side was hugely important. After Clarke’s paper fortified university walls, Jacobi systematically dismantled the barrier. Her paper was greatly influential in helping women gain opportunities in higher education--especially in the sciences.
Jacobi had wanted to be a doctor since childhood. “I began my medical studies when I was about nine years old,” she remembered. “I found a big dead rat and the thought occurred to me that if I had the courage, I could cut that rat open and could find his heart which I greatly longed to see . . . my courage failed me.” Although she tabled the exploratory surgery until she was trained to do it, her interest in the body never waned. In the meantime, Jacobi wrote. Growing up in a family of well-known book publishers, she dabbled in her family’s business, placing stories in The Atlantic Monthly starting at age fifteen and later in the New-York Evening Post.
Jacobi’s father wasn’t thrilled to hear she’d decided to attend medical school. In response, he dangled the amount of her university tuition before her, a carrot that would be hers should she decide against higher education. Jacobi declined his offer, leaving for the Woman’s Medical College of Pennsylvania, in the early 1860s before continuing on to Paris for a second round of schooling. When her mother wrote requesting an update, Jacobi replied, “I think you are rather naive to ask me if ‘I meet many educated French ladies who are physicians.’ Such a thing was never heard of.”
In Paris, an American was considered enough of a curiosity that after months of lobbying, Jacobi was able to claim the first spot at the Ecole de Medecine ever awarded to a woman. There were a few stipulations attached to her attendance. She had to enter lectures through a door not used by other students and sit near the professor. Jacobi joked that hers would be the first petticoat the school had seen since its founding. However strange the circumstances, Jacobi found assimilation easy. She wrote, “I . . . feel as much at home as if I had been there all my life.”
Upon returning to the United States after five years in Paris, Jacobi began lecturing at Women’s Medical College of the New York Infirmary for Women and Children, practicing medicine and carving out more opportunities for women in the field concurrently. Jacobi helped found the Women’s Medical Association of New York City in 1872, opened New York Infirmary’s children’s ward, and became the Academy of Medicine’s first female member. When she was diagnosed with a brain tumor, Jacobi documented the symptoms just as thoroughly and objectively as if she were responding to Clarke’s ridiculous claims. She titled the result, “Description of the Early Symptoms of the Meningeal Tumor Compressing the Cerebellum. From Which the Writer Died. Written by Herself.” Jacobi did like to get in the last word.
Anna Wessels Williams
1863–1954
Bacteriologist • American
Although Anna Wessels Williams believed collaboration was essential, she seized every moment of solitude. In her free time, she went up in stunt planes, teetering between the stomach-dropping danger of pre–World War I flight and the sublime feeling of gliding where so few others could. On the ground, she piled up speeding tickets, the allure of zipping around those in her way apparently too tempting to resist. Williams was alone, this time in the New York City Department of Health’s diagnostic laboratory, when she made one of the lab’s greatest discoveries. In 1894, she isolated a strain of diphtheria. That strain became crucial in developing higher yields of an anti-toxin needed for fighting the infection.
Diphtheria is under control now, but when Williams was working on the problem, it had reached “near-epidemic levels.” The disease hitched a ride on spittle transferred from one person to the next on a cough or during conversation. At first it just caused fever or the chills, but when it really settled in, it could wreak havoc on the heart and nervous system. Children were dying, and those living in poverty were disproportionately at risk.
An antitoxin for diphtheria had been discovered just four years earlier in 1890 by Emil von Behring. It was a major accomplishment, a breakthrough that would earn von Behring the Nobel Prize in Medicine in 1901. Finding a method of infection therapy is one thing, but deploying it globally is entirely another. His antitoxin needed a toxin to activate it, and in the intervening years, scientists were stuck with a low yield of the starter. There wasn’t enough of the serum to go around. Meanwhile, the disease continued to leap from person to person, killing thousands of children per year.
Under the guidance of William H. Park at the Department of Health’s diagnostic laboratory, Anna Williams got to work on finding a strain of the bacteria that could produce a powerful toxin to activate the antitoxin, and in high enough volume to produce it at scale. The breakthrough came while Park was away on vacation. Williams isolated a strain of bacteria that could produce a toxin 500 times more potent than what was previously available.
The strain was named Park-Williams No. 8. Gracious about her boss’s inclusion, she said she was “happy to have the honor of having my name thus associated with Dr. Park.” Williams recognized the necessity of collaboration in research. After all, Williams’s own experiments were bolstered by von Behring’s initial breakthrough. But over time, Park-Williams No. 8 proved too many syllables for the people who worked with it; informally, it became known as Park 8. Just like that, Williams’s pioneering work was clipped from view.
Name recognition wasn’t why Williams got into science; she wasn’t concerned with how many strains of bacteria her name was slapped on to. Her sense of purpose originated from addressing a medical need. Where real-world good is concerned, Park 8 succeeded spectacularly. Since the new strain increased the antitoxin’s availability and slashed cost, Williams was instrumental in slowing down the spread of disease. Within a year of her discovery, the diphtheria antitoxin went into mass production. To address the staggering demand, mass quantities of the preparation were shipped to physicians in the United States and England without charge.
Williams’s decision to go into medical science originated from a time when she witnessed one bad event spin out of control without the knowledge or training to intervene. For Williams, the stillbirth of her sister’s baby in 1887 and the near death of her sister during childbirth would have at least been partially avoidable had the attending physician been more thoroughly trained. The horrific incident gave Williams resolve. She would battle such medical ignorance with her own education.
Williams quit her job as a schoolteacher almost immediately after the incident in order to enroll in classes at the Women’s Medical College of the New York Infirmary. She found her schoolwork thrilling: “I was starting on a way that had been practically untrod before by a woman. My belief at the time in human individuality, regardless of sex, race, religion or any factor other than ability was at its strongest. I believed, therefore, that females should have equal opportunities with males to develop their powers to the utmost.” By 1891, she’d earned her MD.
At the New York City Department of Health, opportunities to tackle nasty diseases appeared almost immediately. That diphtheria breakthrough? It happened in 1894, within her first year at the organization, when she was still just a volunteer. She was added to the payroll the following year and given a title: assistant bacteriologist.
Creative and fearless, Williams took a sabbatical in Paris in 1896 to research scarlet fever at the Pasteur Institute. There she was met with a culture of deep secrecy, where discussion of time-sensitive research was strictly off-limits and research tools like cadavers were not to be shared. She hoped to do for scarlet fever what she’d done for diphtheria, but the research was a bust.
The trip was redeemed by rabies, or rather by the problems of diagnosis and prevention that the disease posed. When it was time for Williams to return to the United States, she took a culture of the rabies vaccine with her. In her lab at the New York City Department of Health, she cared for the culture, coaxing it to grow. Eventually she had enough to produce vaccinations for fifteen people. Following Williams’s interest in it, producing the vaccine became a major initiative in the United States.
Having handed off one part of the problem, Williams flipped back to studying detection. Rabies was maddeningly difficult to diagnose, and by the time scientists concretely pinpointed the disease in a patient, the opportunity for a vaccine had already expired. Rabies affects the nervous system and brain, so Williams started to look for flags the virus plants inside the body that might be used for early detection. And sure enough: Williams noticed that the virus was manhandling the structure of cells in the brain. It was major news, but Williams lost the headline again. While meticulously checking and double-checking her results, an Italian physician named Adelchi Negri independently discovered the cells. He beat her to the pages of a scholarly journal. Those rabies-affected cells are now called Negri bodies.
From rabies, Williams worked her way through research on venereal disease, eye infections, influenza, pneumonia, meningitis, and smallpox. Early on, her studies were powered by the drive “to find out about the what, why, when and where and how of the mysteries of life,” she explained. “This trait had increased with the years, and finally had become a passion.”
In 1934, Williams and nearly one hundred other workers were forced to retire by New York City mayor Fiorello La Guardia because they were over seventy years old. The mayor sent Williams packing, calling her “a scientist of international repute” on her way out the door. The mayor’s name became an airport. Williams didn’t need that kind of recognition; she was the one who actually flew.
Alice Ball
1892–1916
Chemistry • American
Jack London called Kalaupapa, a tile of land on the Hawaiian island of Molokai, “The pit of hell, the most cursed place on earth.” On three sides, the area is surrounded by ocean. On the fourth, it’s fenced in by a sheer two-thousand-foot cliff. It wasn’t easy to get in. It was even harder to get out.
The area’s occupants were struck with what was called the living death. Beginning in 1866 and lasting for eighty years, some eight thousand people with leprosy were ripped from their homes, arrested, and relocated to Kalaupapa, never to be seen again. For families, these departures were treated like deaths. A funeral was held, property was distributed, and families mourned the loss of a person still living. But sufferers were considered dangerous disease-spreaders and, without a cure, a lost cause.
Leprosy ravages the skin. It attacks the mucous membranes in the eyes, nose, and throat, and it goes after the peripheral nerves, located outside the brain and the spinal cord. The ability to feel pain goes, as do chunks of skin that develop into lesions. The damage is caused by a relative of tuberculosis. Although the disease is not as contagious as most think, to this day, doctors still don’t understand how it moves among patients.
For hundreds of years, the closest thing to leprosy medication was an oil that came from the seeds of a chaulmoogra tree. People smeared it on the skin, swallowed it, and even injected it, but each delivery method was problematic. Rubbing it on like lotion didn’t have any negative effects, but it also didn’t do much good. The oil’s acrid taste made swallowing it nauseating. When it was injected, the treatment just sat under the skin in a lump getting along exactly as you’d expect oil and water to. The injection became a subcutaneous snail; as it traveled, it burned. There were no good solutions.
Product details
- ASIN : 0553446797
- Publisher : Broadway Books; First Edition (April 7, 2015)
- Language : English
- Paperback : 288 pages
- ISBN-10 : 9780553446791
- ISBN-13 : 978-0553446791
- Item Weight : 8.1 ounces
- Dimensions : 5.2 x 0.72 x 8 inches
- Best Sellers Rank: #120,485 in Books (See Top 100 in Books)
- #332 in Women in History
- #394 in History & Philosophy of Science (Books)
- #1,530 in Women's Biographies
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About the author

Rachel Swaby is a National Magazine Award-nominated journalist and author based in Los Angeles, CA. Her work has appeared in Wired, The Atlantic, and The New York Times. Her first book, Headstrong: 52 Women Who Changed Science—and the World, came out in 2015. Her most recent book, Mighty Moe: The True Story of a Thirteen-Year-Old Women's Running Revolutionary, came out in 2019. She is currently the president and co-founder of the podcast company Reasonable Volume.
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Customers find the book interesting, inspiring, and compelling. They describe it as a quick read and well-written. Readers appreciate the short chapters and mini-biographies. They also say the stories about fabulous women make them proud.
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Customers find the book interesting, inspiring, and compelling. They say it's a good reference for girls and a good way to share stories with the family. Readers also mention the book is useful to start any project.
"...This also a great book for young female under/graduate students in STEM who may be experiencing impostor syndrome in male dominated fields or May..." Read more
"Very insightful, well written and consise. Yes it does talk in detail about the struggles and sacrifices women had to make...." Read more
"Not great literature but well researched and very inspiring, this book is full of strong women who have achieved great things across many, many..." Read more
"...then pass it on to my granddaug.... Although the book is interesting, it is a dry read. I can only read a few pages at a time." Read more
Customers find the book great, interesting, and inspiring. They say it's well-written, concise, and clear. Readers also mention the subjects are generally well-chosen.
"...The subjects, all deceased, are generally well chosen, although I do quibble about a couple and how they fit with the title (to each their own)...." Read more
"Very insightful, well written and consise. Yes it does talk in detail about the struggles and sacrifices women had to make...." Read more
"...I am hoping they will find it as inspiring as I did. A great read -- doesn't have to be read in any sequence -- short chapters -- just my cup of tea." Read more
"...Really savvy writing from a gifted writer with an ability to engage and inform." Read more
Customers find the stories in the book to be short. They say the chapters are short, and the mini-biographies are very brief, mostly 5 or 6 pages each. Readers also appreciate the format of 52 short biographies, saying it makes it easier to absorb the many breakthroughs.
"...These mini-biographies are very brief, mostly 5 or 6 pages each, and are presented in general categories (physics, biology/environment, inventors)...." Read more
"...A great read -- doesn't have to be read in any sequence -- short chapters -- just my cup of tea." Read more
"...The format of 52 short biographies made it easier to absorb the many breakthroughs and innovations of these amazing women" Read more
"Great short chapters for easy consumption - fun variety of people to read about." Read more
Customers find the stories about fabulous women in the book great and interesting. They also appreciate the short essays on female scientists from different eras.
"This book has great stories about fabulous women. Well written and very interesting." Read more
"Loving the short essays on women scientists from all different eras." Read more
"Makes women proud!" Read more
"Cool ladies, less than perfect writing..." Read more
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With regard to Lamarr, born Hedwig Eva Kiesler in Vienna in 1914, she was among the most popular film stars in the 1930s through the 1950s but, as Swaby points out, she and George Antheil developed a frequency-hopping technology that was a much better way to guide torpedoes. "Lamarr's ideas paved the way for a myriad of technologies, including wireless cash registers, bar code readers, and home control systems, to name a few. While she had a long career as a celebrated actress, Lamarr finally got the full recognition she deserved when she was awarded the Electronic Frontier Foundation's Pioneer Award in 1997. Her response: 'It's about time.'" Of course, her contributions during World War Two were classified and her key insight was not revealed until 1976 -- "thirty-five years after Lamarr patented it."
Here's a representative selection, a "sampler," of biographical details among those of greatest interest to me:
o Charlotte Auerbach (1899-1994) realized that, to understand a gene, she needed to understand its mutation. "Just a few mustard-gas burns and some lab work later, and Auerbach was at the top of the field, the so-called mother of mutagenesis."
o Anne McLaren (1927-2007) not only proved in vitro fertilization was possible, "but years later, she was also responsible for safely and ethically guiding it into the world."
o Marguerite Perey was the first woman elected to the French Academy of Sciences (before Madame Curie) in recognition of her development of a new radioactive element, #87, that "filled an empty square in the periodic table's alkali metal group, and completed the table's spaces for naturally occurring elements."
o Chien-Shung Wu (1912-1997): When the results of her experiments in radioactivity to coax the K-meson into an observable state were announced, "an article in the New York Post gushed, 'This small modest woman was powerful enough to do what armies can never accomplish: she helped destroy a law of nature."
o Ada Lovelace (1815-1852) was the daughter of Lord Byron and received what was in her time a superb education. Her research notes helped Charles Babbage to develop his "Difference Engine" and then his "Analytical Engine," providing what amounts to programming code for two of the earliest computers.
o Stephanie Kwolek (1923-2014): Her preparation of the cold-spun threads (kevlar, developed in the DuPont labs) "launched a brand-new area of research around liquid crystalline polymers."
Throughout the history of science, most breakthroughs have been the result of cross-functional, often cross-generational collaboration. The 52 scientists on whom Swaby focuses would be among the first to acknowledge the value of what they learned from others as well as the value of what their associates contributed to the given process eventual success, to reveal, for example, the complex structures of biochemical substances (Dorothy Crowfoot Hodgkin) or to calm the temperament of the arc light (Hertha Ayrton).
Rachel Swaby urges her reader to learn about those whose research "jump-started the Environmental Protection Agency, who discovered the wrinkle-free cotton, and even those whose ingenious score has now saved generations of struggling newborns."
If you are a young woman who aspires to gain an education and then pursue a career in one of the STEM disciplines or is now embarked upon that journey, I urge you to read and then re-read this book and leave the final comment in this brief commentary to one of my personal heroines, Helen Keller: ""Life is either a daring adventure or nothing."
Top reviews from other countries
These ladies excelled at a time when their sex was a real disadvantage!
However, I would take seriously the authors recommendation to read one chapter a week because it did get a bit dull skipping from one person to the next near the end of the book.
Plus, I would say it was very european and american centric. Surely there were fantastic scientists in asia, africa and the middle east? or even canada for gods sake?? So yeah, a brilliant book but her breadth could probably have been better.

